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AI Powered Data Analytics Course in Gurgaon with 100% Placement Support

Want to become job-ready in 6-months? Join The NexaLearn Data Analytics Course in Gurgaon with Industry Backed Mentors where you learn  Excel, SQL, Power BI, statistics, and 20+ Gen AI tools. 100% Placement Assistance

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The NexaLearn Data Analyst Course in Gurgaon That Helped

30k+ students

We don't just teach we help you get hired at top-tier product companies in Gurgaon.

Samsung
Accenture
Deloitte
GitHub
TCS
American Express
Google
Siemens
Vercel
Amazon
ICICI Bank
Tech Mahindra
Infosys
Nvidia
Samsung
Accenture
Deloitte
GitHub
TCS
American Express
Google
Siemens
Vercel
Amazon
ICICI Bank
Tech Mahindra
Infosys
Nvidia
Microsoft
Flipkart
Myntra
Zepto
Cred
Blinkit
Zomato
Swiggy
EY
PwC
boAt
Microsoft
Flipkart
Myntra
Zepto
Cred
Blinkit
Zomato
Swiggy
EY
PwC
boAt

Curated Job Boards

500+ Active Openings

Skip random job hunting. Get direct access to 200+ active hiring partners of The NexaLearn Gurgaon.

Learn more

Average Hike

85%

Google

Data Analyst

Google • Bangalore

Estimated CTC

35 LPA
HOT

Build a Solid Portfolio

Our Placement Team helps you to build a standout portfolio which ensure your job-guarantee.

Average Hike

85%

Arjun Sharma

Arjun Sharma

Business Analyst

Optimized
Portfolio Live

Resume Score

92/100

Mock Interview Preparation

Our Data Analyst Course in Gurgaon gives you projects and mentor feedback so you get used to answering those questions with work you’ve actually done.

Average Hike

85%

Interview Rating

CommunicationEXCELLENT
Technical DepthSTRONG
Problem SolvingTOP 1%

Feedback from Senior Data Analyst at Meta

Meta

Become A Certified

Data Analyst

A certificate can strengthen your profile, but recruiters may still want to know what you can actually do. Become a certified Data Analyst with The NexaLearn Best Data Analytics Course in Gurgaon.

12.6 LPA
HIGHEST SALARY
200 +
PARTNER COMPANIES
100%
JOB ASSISTANCE
5.7 LPA
AVERAGE SALARY
NexaLearn
Standard Courses
Industry Readiness

6–10 month job-focused curriculum.

Long programs with less practical exposure.

Personalised Placement Support

200+ hiring partners with placement support.

Limited support and generic job portals.

Classroom Learning

300+ hours of live online & offline sessions.

Mostly self-paced with fewer live classes.

Data Analytics Studio

Studio projects, hackathons, and masterclasses.

Limited real-world project exposure.

Personalised Mentorship

1:1 mentorship from industry experts.

Limited personalised career guidance.

Book a Free Demo Class

Wanted to earn 12 LPA? Then Join The NexaLearn AI Powered Data Analytics Course in Gurgaon Free Demo Class.

AI-Infused Data Analytics Curriculum in Gurgaon

Our Best Data Analyst Course in Gurgaon Follows complete Carrer-First structure which make sure to build our students Expert Data Analyst in 6-months.

Module 01

Business Analytics Foundations

Teach learners how data analytics is used to solve real business problems, not just how to operate tools.

Key Topics

What is data analytics?
Types of analytics
•

Descriptive analytics

•

Diagnostic analytics

•

Predictive analytics

•

Prescriptive analytics

Difference between data, metrics, KPIs, and insights
Business questions vs data questions
Understanding stakeholders and requirement gathering
Defining success metrics
Common business metrics
•

Revenue

•

Profit margin

•

Conversion rate

•

Retention rate

•

Churn rate

•

Customer lifetime value

•

Average order value

•

Return on ad spend

Basics of data storytelling and communicating insights to non-technical stakeholders
Practical Capstone Project

Business Problem Framing Project

Convert a vague problem such as “Sales are declining. Find out why.” into business questions, required data, KPIs, an analysis plan, and an expected dashboard/report structure.

Module 01

Business Analytics Foundations

Teach learners how data analytics is used to solve real business problems, not just how to operate tools.

Key Topics

What is data analytics?

Types of analytics

•

Descriptive analytics

•

Diagnostic analytics

•

Predictive analytics

•

Prescriptive analytics

Difference between data, metrics, KPIs, and insights

Business questions vs data questions

Understanding stakeholders and requirement gathering

Defining success metrics

Common business metrics

•

Revenue

•

Profit margin

•

Conversion rate

•

Retention rate

•

Churn rate

•

Customer lifetime value

•

Average order value

•

Return on ad spend

Basics of data storytelling and communicating insights to non-technical stakeholders

Practical Capstone Project

Business Problem Framing Project

Convert a vague problem such as “Sales are declining. Find out why.” into business questions, required data, KPIs, an analysis plan, and an expected dashboard/report structure.

Module 02

Modern Excel for Business Analytics

Teach Excel as a practical business analytics tool, including modern functions, Power Query, reporting, and dashboarding.

Key Topics

Excel basics

•

Interface, cell formatting, data types, sorting, filtering, data validation, named ranges, and conditional formatting

Modern Excel functions

•

SUM, COUNT, MIN, MAX, AVERAGE, COUNTA, COUNTBLANK

•

IF, AND, OR, NOT

•

SUMIF, SUMIFS, COUNTIF, COUNTIFS

•

XLOOKUP, INDEX, MATCH

•

FILTER, SORT, UNIQUE

•

LEFT, RIGHT, MID, FIND, LEN, TRIM, SUBSTITUTE, UPPER, LOWER, PROPER

•

TODAY, NOW, MONTH, YEAR, DAY, WEEKDAY, NETWORKDAYS, WEEKNUM

Data cleaning in Excel

•

Removing duplicates, handling blanks, standardizing text, splitting and combining columns, cleaning dates, and preparing sales/customer data

Pivot tables and reporting

•

Grouping, binning, calculated fields, slicers, timelines, summary reports, and cross-tab reports

Power Query

•

Importing from Excel/CSV/folders, removing and renaming columns, changing data types, merging, appending, and creating reusable cleaning workflows

Excel dashboards

•

Dashboard design, KPI cards, trend charts, bar charts, waterfall charts, dynamic dashboards, and executive layouts

Practical Capstone Project

Retail Sales Excel Dashboard

Clean raw sales data and build a dashboard showing total sales, monthly trend, top products, top regions, profit margin, customer segments, and salesperson performance.

Module 03

SQL for Real-World Analytics

Teach SQL as the core skill for analysis, reporting, segmentation, cohorting, and business decision-making.

Key Topics

SQL foundations

•

Relational databases, tables, primary keys, foreign keys, data types, SELECT, WHERE, ORDER BY, GROUP BY, HAVING, DISTINCT, and NULL handling

Joins and data merging

•

INNER JOIN, LEFT JOIN, RIGHT JOIN, FULL OUTER JOIN, UNION, UNION ALL, INTERSECT, and EXCEPT

Business SQL

•

CASE WHEN, date functions, text functions, conditional aggregations, deduplication, rollups, and revenue calculations

Intermediate SQL

•

Subqueries, CTEs, temporary tables, window functions, ROW_NUMBER, RANK, DENSE_RANK, LAG, LEAD, running totals, and moving averages

Advanced analytics SQL

•

Cohort analysis, funnel analysis, retention analysis, segmentation, churn-risk identification, RFM analysis, booking window analysis, attribution basics, data quality checks, and query optimization basics

Cloud SQL exposure

•

Google BigQuery, Snowflake, Microsoft Fabric Warehouse, Amazon Redshift, or Databricks SQL

Practical Capstone Project

Customer Retention SQL Project

Calculate first purchase date, last purchase date, total orders, total revenue, average order value, repeat customer flag, churn-risk flag, monthly retention, and cohort performance.

Module 04

Data Modeling and Analytics Engineering

Teach learners how trusted analytics datasets are designed before dashboards are built.

Key Topics

Data modeling basics

•

Transactional vs analytical data, OLTP vs OLAP, fact tables, dimension tables, star schema, snowflake schema, table grain, primary keys, and foreign keys

Analytics engineering workflow

•

Raw layer, staging layer, intermediate layer, mart layer, metric layer, documentation, testing, and data lineage

Practical data models

•

Customer dimension, product dimension, date dimension, sales fact table, marketing campaign fact table, web events fact table, and aggregated reporting tables

Data quality

•

Null checks, duplicate checks, referential integrity, freshness checks, volume checks, outlier checks, and metric reconciliation

Version control basics

•

Why Git matters, GitHub basics, project folder structure, SQL file organization, and README documentation

Practical Capstone Project

Build an Analytics Data Mart

Convert raw orders, customers, and products into staging tables, intermediate models, and business marts such as mart_customer_revenue and mart_monthly_sales.

Module 05

Power BI for Enterprise Analytics

Teach Power BI as an enterprise BI and decision-support platform, not just a desktop visualization tool.

Key Topics

Power BI foundations

•

Power BI Desktop, Power BI Service, import mode, DirectQuery, data view, model view, and report view

Power Query

•

Cleaning data, merging, appending, conditional columns, type changes, date transformations, text transformations, and parameterized queries

Data modeling in Power BI

•

Star schema, fact/dimension tables, relationships, cardinality, filter direction, date tables, role-playing dimensions, and measure tables

DAX

•

Calculated columns vs measures, SUM, COUNT, DISTINCTCOUNT, CALCULATE, FILTER, ALL, DIVIDE, time intelligence, YTD, MTD, QTD, rolling averages, ranking, contribution percentage, row context, and filter context

Dashboard and report design

•

KPI cards, trend charts, bar charts, matrix visuals, drill-through pages, tooltips, bookmarks, field parameters, slicers, filters, and executive summary pages

Enterprise Power BI

•

Publishing, workspaces, scheduled refresh, gateway basics, row-level security, app sharing, deployment pipelines, Performance Analyzer, and dataset optimization

AI-ready Power BI

•

Clean semantic model design, business-friendly field names, measure descriptions, and consistent metric definitions

Practical Capstone Project

Executive Sales Performance Dashboard

Build and publish a dashboard showing revenue, profit, monthly growth, region performance, product category performance, salesperson ranking, customer segments, and drill-through details.

Module 06

Tableau for Data Storytelling

Teach Tableau as a visual storytelling and exploratory dashboarding tool.

Key Topics

Tableau foundations

•

Interface, data connections, dimensions and measures, discrete vs continuous fields, marks card, shelves, filters, and parameters

Tableau calculations

•

Calculated fields, logical calculations, string calculations, date calculations, table calculations, percent of total, running total, rank, and Level of Detail expressions

Visual analytics

•

Bar charts, line charts, scatter plots, heatmaps, maps, dual-axis charts, combo charts, reference lines, trend lines, and forecasting basics

Dashboard design

•

Layouts, containers, actions, filters, parameters, story points, executive storytelling, and avoiding dashboard clutter

Practical Capstone Project

Customer Segmentation Dashboard

Build a dashboard showing customer segments, revenue by segment, retention by segment, region-wise distribution, high-value customers, and churn-risk customers.

Module 07

Python for Data Analytics

Teach Python as a practical tool for data cleaning, analysis, automation, and machine learning.

Key Topics

Python foundations

•

Installation, Jupyter Notebook, VS Code, variables, data types, strings, lists, tuples, dictionaries, sets, conditionals, loops, functions, lambda functions, comprehensions, error handling, files, modules, and packages

Python for data work

•

Virtual environments, package installation, project folder structure, reading CSV/Excel/JSON files, connecting to APIs, and writing reusable scripts

NumPy

•

Arrays, indexing, slicing, reshaping, combining arrays, math operations, and basic statistics

pandas

•

Series, DataFrames, reading data, inspecting data, filtering rows, selecting columns, renaming, dropping, missing values, duplicates, type conversion, dates, grouping, merging, appending, pivots, and derived columns

Exploratory data analysis

•

Summary statistics, frequency tables, univariate analysis, bivariate analysis, correlation, outliers, missing values, and business interpretation

Data visualization

•

Matplotlib, Seaborn, line charts, bar charts, histograms, box plots, scatter plots, heatmaps, regression plots, and geospatial basics with Folium

Python automation

•

Automating repeated reports, cleaning multiple files from a folder, exporting clean datasets, creating automated Excel outputs, and report automation concepts

Practical Capstone Project

Marketing Campaign Analysis with Python

Clean campaign data and calculate impressions, clicks, CTR, spend, CPC, conversions, CPA, revenue, ROAS, best-performing campaign, and worst-performing campaign.

Module 08

Statistics for Data Analysts

Teach statistical thinking required for reliable business decision-making.

Key Topics

Foundations

•

Population vs sample, mean, median, mode, variance, standard deviation, percentiles, distributions, skewness, and outliers

Probability basics

•

Probability concepts, conditional probability, expected value, normal distribution, and binomial distribution

Inferential statistics

•

Sampling, sampling bias, confidence intervals, hypothesis testing, p-values, statistical significance, and practical significance

Business testing

•

A/B testing, control vs treatment, conversion rate testing, t-test, chi-square test, ANOVA basics, sample size intuition, experiment design, and common testing mistakes

Regression interpretation

•

Simple linear regression, multiple linear regression, coefficients, R-squared, residuals, and correlation vs causation

Practical Capstone Project

A/B Testing Project

Analyze two versions of a landing page and decide which performed better, whether the difference is statistically meaningful, and whether the business should roll out the new version.

Module 09

Applied Machine Learning for Analysts (Data Science)

Teach machine learning as a practical business analytics skill, not as abstract theory.

Key Topics

ML foundations

•

Supervised learning, unsupervised learning, regression, classification, clustering, train/test split, features, and target variables

Regression models

•

Linear regression, decision tree regression, random forest regression, RMSE, MSE, MAE, and business interpretation of errors

Classification models

•

Logistic regression, decision tree classifier, random forest classifier, KNN, accuracy, precision, recall, F1-score, confusion matrix, and ROC-AUC basics

Model improvement

•

Feature engineering, categorical variables, scaling, cross-validation, grid search, overfitting, and underfitting

Unsupervised learning

•

K-means clustering, PCA, customer segmentation, and cluster interpretation

Deployment basics

•

Saving models with pickle, simple Streamlit apps, model documentation, and business recommendations from model outputs

Responsible ML

•

Bias in data, explainability, model limitations, human review, and monitoring model performance

Practical Capstone Project

Customer Churn Prediction

Build a model to predict customers likely to churn, compare models, evaluate performance, explain model limitations, and recommend business actions.

Module 10

Generative AI for Data Analytics

Teach learners how to use GenAI responsibly and practically in analytics workflows.

Key Topics

GenAI foundations

•

LLMs, GPT-style models, tokens, context windows, prompt engineering, system prompts, user prompts, few-shot prompting, hallucination risk, and bias risk

AI-assisted analytics

•

Using AI to understand business problems, generate SQL drafts, debug SQL, explain SQL, write Python, debug Python, summarize EDA, design dashboards, and generate stakeholder summaries

OpenAI API and LLM workflows

•

API basics, API keys conceptually, request/response structure, temperature, max tokens, cost awareness, prompt templates, and structured outputs

Embeddings and vector search

•

Embeddings, semantic search, FAISS, vector databases, similarity search, and analytics use cases

RAG for analytics

•

Retrieval-Augmented Generation, chunking, metadata, retrieval quality, grounded answers, source citations, RAG evaluation, and preventing unsupported answers

AI agents for analytics

•

Tool use, planning, SQL agents, dashboard assistants, documentation assistants, data quality assistants, risks of agentic workflows, and human-in-the-loop review

Responsible AI

•

Data privacy, sensitive data handling, hallucination checks, governance, explainability, and when not to use AI

Practical Capstone Project

AI Analytics Assistant

Build a simple assistant that answers questions from business documents, data dictionaries, dashboard documentation, and sample datasets while retrieving relevant context and refusing unsupported answers.

Module 11

Cloud Data Platforms and Modern Data Stack

Expose learners to how analytics is delivered in modern companies using cloud platforms.

Key Topics

Modern platform concepts

•

Data warehouse, data lake, lakehouse, data mart, batch processing, streaming basics, ELT vs ETL, and bronze/silver/gold layers

Cloud warehouse exposure

•

Google BigQuery, Snowflake, Microsoft Fabric, Databricks, or Amazon Redshift

Data ingestion

•

Loading CSV files, Excel files, API data, scheduled refresh, and data pipeline basics

Data transformation

•

SQL transformations, Python transformations, Power Query transformations, and dbt-style transformation logic

Governance and cost awareness

•

Access control, data privacy, query cost, storage cost, refresh frequency, documentation, and lineage

Practical Capstone Project

Cloud Analytics Pipeline

Build a mini pipeline from raw CSV/API data to a cloud warehouse table, cleaned SQL model, business data mart, and Power BI dashboard.

Module 12

Business Domain Analytics

Teach learners how analytics changes across business functions and how metrics differ by domain.

Key Topics

Marketing analytics

•

Campaign performance, CTR, CPC, CPA, ROAS, funnel conversion, attribution basics, and lead scoring

Sales analytics

•

Revenue, pipeline analysis, win rate, sales cycle, salesperson performance, and forecasting basics

Customer analytics

•

Segmentation, RFM, customer lifetime value, churn, retention, and repeat purchase rate

Product analytics

•

DAU, MAU, activation, feature adoption, retention curves, funnel drop-off, and North Star metric

Finance analytics

•

Revenue, cost, gross margin, EBITDA basics, budget vs actual, and forecasting

Operations analytics

•

Turnaround time, SLA, defect rate, inventory, process bottlenecks, and productivity metrics

Practical Capstone Project

Business Function Analytics Case Study

Choose one domain, define the business problem, identify KPIs, clean data, analyze trends, build a dashboard, and present recommendations.

Module 13

Data Storytelling and Stakeholder Communication

Teach learners how to communicate insights clearly, professionally, and actionably.

Key Topics

Insight vs observation

Executive summary writing

Structuring analysis

Pyramid principle

Before/after comparison

Root cause explanation

Recommendation writing

Dashboard narration

Presenting uncertainty

Handling stakeholder questions

Making analysis actionable

Practical Capstone Project

Executive Insight Memo

Write a one-page memo explaining what happened, why it happened, why it matters, what the business should do next, and what the limitations are.

Module 14

Capstone Portfolio

Ensure every learner completes job-ready portfolio projects that demonstrate practical analytics ability.

Key Topics

Required portfolio projects

•

SQL business analysis

•

Power BI executive dashboard

•

Python EDA project

•

Statistics or A/B testing project

•

Machine learning project

•

GenAI analytics project

Final presentation

•

Problem statement, dataset used, methodology, tools used, key findings, business recommendations, limitations, and next steps

Practical Capstone Project

Final Capstone Presentation

Present the complete analytics portfolio to demonstrate business understanding, technical execution, communication quality, and practical decision support.

Technical Stack

20+ Gen AI Tools You Will Learn

Learn 20+ Modern Tools with our best data analytics course in Gurgaon where ou’ll also learn to check what AI gives you instead of using every output as it is.

Excel
Excel
MYSQL
MYSQL
Tableau
Tableau
Python
Python
Power BI
Power BI
Pandas
Pandas
NumPy
NumPy
Scikit Learn
Scikit Learn
Jupyter
Jupyter
GitHub
GitHub

Get the Complete Tools List in Gurgaon

Download all the tool lists that you will master throughout our NEXGEN Data Analytics Training in Gurgaon

Industry-Relevant

Projects You Will Learn

E-Commerce Sales Performance
ExcelPivot TablesVLOOKUP

E-Commerce Sales Performance

Analyze retail data using Excel Pivot Tables, VLOOKUP, and professional data cleaning techniques to identify growth opportunities.

Our Alumni

See how our graduates are changing the world.

Success Story

Akreeti Sharma

Previous RoleStudent
Current RoleOperations Analyst
atFoxit
Placed ✓
Akreeti Sharma

Akreeti Sharma

• 3rd+

Operations Analyst at Foxit Software

12h •

I'm excited to share that I'm starting a new position as a Operations Analyst at Foxit Software! I'm extremely grateful to my mentors at The NexaLearn, friends, and family for their endless support throughout this journey. #DataAnalytics #FoxitSoftware #CareerGrowth #NewBeginnings #Grateful

Starting a new position
👏
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6 comments

Why Choose The NexaLearn Data Analytics Course in Gurgaon?

Now if you made your mind to learn data analytics, then know why choose The NexaLearn Data Analytics Course in Gurgaon is the right choice for you.

Learn

Learn the Advanced Gen AI Course

You’ll begin with Excel and the basics of working with data, then move into SQL, Power BI, Tableau, Python, statistics and machine learning with 20+ Gen AI tools during the course.

4.7/5

Average Rating

Get Mentored

Get Mentored by Industry Experts

Learn from top Industry-Backed Mentors with The NexaLearn Gurgaon, where they review your work, show you what needs fixing and explain why.

4.9/5

Average Rating

Build

Learn 20+ Gen AI Tools

Learn 20+ Gen AI tools which helps to build dashboards, SQL work, Excel analyses and Python projects that you can organise into a portfolio. 

20+

Gen AI Tools

SQL

SQL

Live in Project

Python

Python

Tableau

Tableau

Excel

Excel

Placement

Get Our Placement Service

Join our best data analytics course in Gurgaon with placement where we help you work on your CV, LinkedIn profile and portfolio, practise technical and project-based interview questions

100%

Interview Guarantee

Get Hired

Get Hired with 200+ Companies

Once your data analyst course in Gurgaon is done, we offer you acces to our 200+ hiring partner which helps you to land your first high-paying job.

200+

Hiring Partners

GoogleAmazonMicrosoftMetaNetflixAdobeUberAirbnbSpotifySamsungOracleIBMGoogleAmazonMicrosoftMetaNetflixAdobeUberAirbnbSpotifySamsungOracleIBM
IBMOracleSamsungSpotifyAirbnbUberAdobeNetflixMetaMicrosoftAmazonGoogleIBMOracleSamsungSpotifyAirbnbUberAdobeNetflixMetaMicrosoftAmazonGoogle
GoogleAmazonMicrosoftMetaNetflixAdobeUberAirbnbSpotifySamsungOracleIBMGoogleAmazonMicrosoftMetaNetflixAdobeUberAirbnbSpotifySamsungOracleIBM
DATA ANALYTICS CERTIFICATION COURSE IN GURGAON

Industry-Backed 
Data Analytics Certificate in Gurgaon

Once you complete the required classes, assignments and projects, you’ll receive your data analytics certificate in Gurgaon from The NexaLearn

Course Completion

Course Completion

Comprehensive mastery of Data Analytics and AI.

Microsoft Certification

Microsoft Certification

Microsoft Certified Data Analyst Associate.

Google Certification

Google Certification

Google Data Analytics Professional Certificate.

Virtual Experience Programs

Virtual Experience Programs

Accenture, Infosys, KPMG, and Quantium Virtual Experience Programs.

Internship Completion

Internship Completion

Successful completion of the Data Analytics Internship.

Instant Verification

Every certificate is cryptographically signed and shareable to portfolios with a single click.

Course Completion
Full Session Review

Sagar

Data Analyst Consultant

Accenture
Accenture
Expert Insights

Learn from Industry Experts

Learn more about real-world data systems directly from expert professionals who are currently working on large-scale production environments and global companies.

Accenture

Sagar

Data Analyst Consultant

Accenture

SESSION HIGHLIGHTS+

Advanced Python & SQL Workflows: Know expert tips and tricks for missing data handling, deduplication, and anomaly detection.

UPCOMING COHORTS

Flexible Batches in Gurgaon

Work meetings, college classes and personal commitments don’t always leave everyone free at the same hour That's why The NexaLearn Gurgaon offers Flexible Batches

Scholarships Available

Classroom Program - Data Analytics Courses in Gurgaon

The NexaLearn Gurgaon offers different batch options based on the current schedule, so you can check the available weekday and weekend timings with our admission team.

Weekday

29th Sep '26'

Mon - Fri (7 PM - 9 PM)

Filling Fast
Weekend

3rd Oct '26'

Sat - Sun (10 AM - 2 PM)

Open

Batch Strength

Limited to 25 Students / Batch

Free Career Guidance

Confused about the
right batch?

Talk to our academic counselors for a free 1-on-1 counseling session to evaluate your career goals.

Counselor
Counselor
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Available to assist

Admissions Open

How To Enroll TheNexaLearn
Data Analytics Course in Gurgaon?

Joining data analyst course in Gurgaon shouldn’t begin with making a payment before you know what you’re paying for with our 3 simple steps.

Application
Counseling
Confirm Enrollment
01

Submit Online Application

Complete the application form with your educational information, work experience, and learning interests.

15 Mins
1-on-1 Session
02

Career Counselling Session

Talk with our admissions counsellors about your objectives, clarify expectations, and ensure the program is a good fit for your career path.

03

Secure Your Seat

Fill out the required documentation and confirm your seat in the upcoming batch.

Fast-Track Entry

Next cohort starts in 12 days

Start Your Application

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Investment Roadmap

The NexaLearn Data Analytics Course Fees in Gurgaon

One flagship program. We cover everything under our AI Powered Data Analytics Course in Gurgaon which helps to land your first high paying job.

Flagship Program

Data Analytics Course in Gurgaon

Advanced Industry Readiness

₹39,900 + GST/one-time

EMI options available • No hidden charges

  • Complete Gen AI Framework
  • Live Interaction Sessions
  • Industry Tools Mastery
  • Placement Preparation
  • NexaLearn Certification
  • 1-on-1 Mentorship
Secure Payments via
Razorpay
Mastercard
UPI
Visa

Invest in Skills, Not Financial Stress

Worried that the data analytics course fee may delay your plans? Our flexible payment options can help.

Monthly Installment

₹3,565/mo
0% Interest Plan
₹15,000
Min: ₹5,000Max: ₹24,000
9 Months

Who Is Eligible to Enroll in a Data Analytics Course in Gurgaon?

Career Starters

Graduates & College Students
  • Students and graduates who want to move beyond classroom theory and build dashboards, SQL work and data projects they can actually show.

  • Freshers preparing for data analyst, MIS, reporting or similar entry-level roles who want to build their analytics skills from the basics.

Career Switchers

Professionals & Job Seekers
  • Sales, marketing, finance, HR and operations professionals who already deal with targets, reports, customers or business numbers as part of their work.

  • Professionals planning to move into analytics who want to use their existing business knowledge rather than treating a career switch as starting completely from zero.

Leaders & Creators

Business Owners & Freelancers
  • Freelancers and consultants who want to add dashboard, r.eporting or analytics can enroll data analytics training in Gurgaon

  • Business owners who regularly see sales, customer or performance reports and want to understand the numbers themselves before deciding what the business should do next.

Upskilling First

In short, there is no such strict requirement to enrol in our Data Analytics Programme, as TheNexaLearn believes in upskilling.

Data Analytics Course in Gurgaon Overview

Everything you need to know about our NexGen Data Anayst Course in Gurgaon with Gen Ai.

About the Program

Learning SQL, Power BI or Python is only one part of getting a job. The other part begins when a recruiter asks you to explain a project, solve a technical question or walk them through something you’ve mentioned on your CV. The NexaLearn Data Analytics Course in Gurgaon with placement preparation starts before you reach that stage.

6Months

Program Duration

10+

Capstone Projects

200+

Hiring Partners

2K+

Students Placed

85%

Avg. Salary Hike

Experienced by our graduates within 3 months of placement.

4.9

/5

By 2,000+ Students

Ready to Start Your Journey?

Next batch starts Sep 29th. Limited seats available.

Frequently Asked Questions

Let's answer some questions

Don’t choose a course only because its syllabus has the longest list of tools. Check who teaches you, how much time you’ll spend working on projects, whether somebody reviews your work and what the placement support actually includes. These details tell you much more about what you’ll get from the course.

While comparing data analytics courses in Gurgaon, look at the complete learning experience rather than only the certificate. A good course should teach the core analytics tools, give you enough project work, provide mentor feedback and help you prepare for interviews. Compare these points before deciding which program suits you.

When comparing training centres, check what “placement assistance” actually means at each institute. Look for resume support, portfolio reviews, mock interviews, technical preparation and access to relevant openings. The NexaLearn Gurgaon includes these services alongside its technical training, projects and mentor support rather than treating placement preparation as a separate last-minute activity.

You’ll learn Excel, SQL, Power BI, Tableau, Python, statistics, machine learning and 20+ Gen AI tools. Projects involve areas such as sales, customers, finance, KPIs, dashboards and forecasts. You’ll work through the data, build the required output and receive mentor feedback on what you’ve done.

Learners receive LMS access for available class recordings, notes, assignments, datasets and other learning material forever by The NexaLearn. 

Yes. Missing one class doesn’t mean you have to move ahead without understanding the topic. You can use the available recording and learning material to catch up, try the related exercise yourself and then discuss specific doubts with your mentor if something still doesn’t make sense.

Our Data Analytics Course in Gurgaon duration is of 6-months including placement preparation as well.

Still have questions? We are here to help you guide your path for data analyst course in Gurgaon

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