Intensive Gen AI Course with Data Science 3.0

Portfolio Building | Interview Mentorship | Internship on Gen AI

Cohort Start Date

19th Jan, 2026

Weekday Batch
(Mon-Fri)

9:30 PM - 11:00 PM(IST)

Time Commitment

12-15Hrs/Week

Program Duration

3 Months

Learning Format

Live Classes

Gen AI Course with Data Science Syllabus

Latest Generative AI Syllabus with High in Demand Skills

What is Included in this Course:

  1. Life-time Dashboard Access
  2. Internship while learning course
  3. Unique Live Projects which increases your resume selection
  4. 3+ POC’s which are mandatory for interviews
  5. Interview Mentorship
  6. Live Classes
  7. ATS Resume & LinkedIn Optimization
  8. Job Referrals
  9. Live Classes
  10. Live Doubt Clarification Mentorship
  11. Mock Interviews 

Mastering Python[Zero to Hero]

  • Introduction to Python
    01:02:54
  • Why Python, Value, Variable, Function, Library[Roadmap on Python]
    01:04:10
  • IDE in Python, Different Data Types
    01:01:53
  • List, Tuple, Set & Dictionary Overview
    57:16
  • Different List Methods
    55:48
  • Different Tuple Methods
    01:04:52
  • Set & Frozenset
    01:00:50
  • Dictionary & String Manipulations
    50:56
  • Overview on Loops, If Statements, UDFs, Escape Sequences, Lambda
    01:03:15
  • Types of Operators, Conditional Statements
    23:42
  • While Loop, List Comprehension, Break, Continue, Arguments
    01:01:18
  • Functions, Escape Sequences, Lambda Functions
    52:23
  • Hackathon-1
    54:32
  • Introduction to OOPS
    16:16
  • Instance Variable, Class Variable, Class Method
    56:53
  • Association vs Composition & Aggregation
    50:02
  • Oops Concept
    36:29
  • Encapsulation, Inheritance
    01:07:07
  • Polymorphism, Method OverLoading, Method Overriding
    53:59
  • Introduction to Pandas
    01:05:22
  • Data Analysis using Pandas
    01:34:29
  • Introduction to Numpy
    57:26
  • Different Numpy Commands
    01:03:00
  • Introduction to Data Visualisation
    51:41
  • Data Visualisation using Matplotlib
    01:00:20
  • Data Visualization using Seaborn
    59:34
  • Data Visualization using Plotly
    41:44
  • Why Data Cleaning?
    47:05
  • Data Cleaning with Sklearn & Pandas
    49:57
  • Regular Expression Basics
    54:01

Advanced Data Structures and Algorithms

Applied Statistics

Statistics with Real-Time Project Demonstration on EDA

Real-Time Project Demonstration on Probability Distribution, Hypothesis Testing

Unsupervised Learning with Real-Time Projects

Feature engineering Techniques

Supervised Learning Algorithms

Probability Distributions, Hypothesis Testing

Mastering NLP, NLU, NLG

MLOps

Azure Machine Learning Engineering

AWS Sagemaker Studio

Introduction to Deep Learning, Tensorflow & Feed Forward Neural Networks

Convolution Neural Network – Math & coding

Computer Vision Mastering Using Tensorflow

Transfer Learning OpenCV & YOLO

RNN & LSTM Coding & Math

Mastering NLP

Mastering NLU

Foundations of Generative AI

Large Language Models (LLMs)

Small Language Models (SLMs)

Prompt Engineering – LLMs: Lang Chains

LangChain Framework

Retrieval-Augmented Generation (RAG)

Amazon Bedrock & GenAI on Cloud

Agentic AI

LangGraph – Multi-Agent DAG Framework

Multi-Agent Systems

Model Context Protocol(MCP)

LLMOps & Production Deployment

LangFlow – Visual Low-Code Interface

n8n for Agent Workflow Automation

Generative AI: Transformer Models BERT, T5, ELMO

Generative AI: Natural Language Generation Using GPT

Generative AI: Mastering T5

Generative AI: Vision Transformers

Generative AI: Autoencoders

Generative AI: Image Based Models

Generative AI: Diffusion Models, Energy Based Models & NFMs

Generative AI – LLMS: Hugging Face

Deep Reinforcement Learning

Interview Questions: Frequently Asked Statistics

MindMap for Interview Revision

Interview Preparation

Course Files

Handwritten Notes

Trainer Profile

Rajeev Kanth: AI Solutions Architect | International Corporate Trainer | Founder of BEPEC Solutions
With 12 + years of hands-on industry and training experience, Rajeev Kanth is a renowned AI Architect and Educator who bridges the gap between enterprise AI adoption and real-world implementation. He has trained over 25,000 professionals worldwide and designed end-to-end AI and Data Solutions architectures for Fortune 500 clients and high-growth start-ups.

  • Building scalable, secure, and composable AI systems with modern stack integration.

  • LangChain | LangGraph | CrewAI | AutoGen | OpenAI | Anthropic | Gemini | Amazon Bedrock | Groq | n8n | LangFlow.

  • Vector Databases (FAISS, Chroma, Pinecone, Weaviate) | Retrieval Strategies | Prompt Optimization | LLM Evaluation.

  • PySpark | Azure Data Factory | Databricks | AWS Glue | Snowflake | Kafka | Airflow | Synapse Analytics.

  • AWS SageMaker | Azure ML Studio | Vertex AI | Ray | MLflow | Docker | Kubernetes | CI/CD.

  • Data Collection → Feature Store → Model Training → Deployment → Monitoring → Governance.

  • Responsible AI | Bias Mitigation | Data Privacy | Compliance (ISO, GDPR, SOC2).

  • Delivered 150 + international corporate bootcamps across India, UAE, UK and the US.

  • Designed and executed over 60 live AI solutions integrated with enterprise ecosystems.

  • Mentored CXOs and Tech Leads on AI adoption strategies and responsible AI governance.

  • Featured in leading AI conferences for talks on “Agentic AI and Future of Autonomous Systems.

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