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Sajjan Yadav
  • Qualification:B.Tech / B.E.
  • Language:English, Hindi
  • Experience:3 years

Sajjan Yadav

Online

About

ajjan Yadav is an AI Trainer, Machine Learning Engineer, Generative AI (GenAI) Expert, and Agentic AI Specialist with strong expertise in building intelligent, autonomous AI system...

ajjan Yadav is an AI Trainer, Machine Learning Engineer, Generative AI (GenAI) Expert, and Agentic AI Specialist with strong expertise in building intelligent, autonomous AI systems. He specializes in developing real-world AI solutions that combine Machine Learning, Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), and Agentic workflows.With extensive experience in training students and professionals, Sajjan focuses on practical, project-based learning and deployment-oriented teaching. His expertise includes building AI assistants, RAG-based knowledge systems, LLM-powered automation tools, and AI agents capable of decision-making and tool usage.He has successfully trained learners in Python, Machine Learning, Deep Learning, NLP, Generative AI, and AI system deployment using Flask and cloud platforms. His teaching style simplifies complex AI concepts into clear, real-world applications.🔹 Core Expertise:Machine Learning & Deep LearningGenerative AI & LLM ApplicationsAgentic AI Systems & AI AutomationRAG-based Knowledge SystemsNLP & Advanced Text ProcessingModel Deployment (Flask & Cloud)End-to-End AI System Design
Sajjan Yadav

Sajjan Yadav

Online

  • Qualification:B.Tech / B.E.
  • Language:English, Hindi
  • Experience:3 years

ajjan Yadav is an AI Trainer, Machine Learning Engineer, Generative AI (GenAI) Expert, and Agentic AI Specialist with strong expertise in building intelligent, autonomous AI system...

ajjan Yadav is an AI Trainer, Machine Learning Engineer, Generative AI (GenAI) Expert, and Agentic AI Specialist with strong expertise in building intelligent, autonomous AI systems. He specializes in developing real-world AI solutions that combine Machine Learning, Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), and Agentic workflows.With extensive experience in training students and professionals, Sajjan focuses on practical, project-based learning and deployment-oriented teaching. His expertise includes building AI assistants, RAG-based knowledge systems, LLM-powered automation tools, and AI agents capable of decision-making and tool usage.He has successfully trained learners in Python, Machine Learning, Deep Learning, NLP, Generative AI, and AI system deployment using Flask and cloud platforms. His teaching style simplifies complex AI concepts into clear, real-world applications.🔹 Core Expertise:Machine Learning & Deep LearningGenerative AI & LLM ApplicationsAgentic AI Systems & AI AutomationRAG-based Knowledge SystemsNLP & Advanced Text ProcessingModel Deployment (Flask & Cloud)End-to-End AI System Design
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Courses by: Sajjan Yadav

Advanced Generative AI & Agentic by Sajjan Yadav

This comprehensive AI Engineering with Generative AI and Agent Systems Course is an advanced, career-oriented online program designed for learners who want to build strong expertise in Artificial Intelligence, Machine Learning, Deep Learning, and modern Generative AI technologies.

The course follows a structured learning path starting from Python and AI fundamentals, progressing through machine learning, deep learning, computer vision, and ultimately reaching cutting-edge topics such as Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), and autonomous AI agents.

It is ideal for college students, aspiring AI engineers, software developers, and professionals who want to transition into high-demand AI roles. The program emphasizes practical learning through real-world projects, hands-on coding, and deployment training to ensure learners gain job-ready skills.

PHASE 1: AI & Python Foundations (Beginner Level)

Module 1: Python Programming for AI

  • Python Basics (Variables, Data Types)

  • Conditions & Loops

  • Functions

  • OOPS (Encapsulation, Inheritance, Polymorphism)

  • NumPy (Arrays & Math Ops)

  • Pandas (Data Handling)

  • Data Cleaning

  • Data Visualization

  • Basic Statistics for AI


PHASE 2: Machine Learning Foundations

Module 2: Introduction to Machine Learning

  • What is AI vs ML vs DL

  • Types of ML (Supervised/Unsupervised)

  • Dataset Understanding

  • Train-Test Split

  • Linear Regression

  • Logistic Regression

  • KNN

  • Naive Bayes

  • Decision Trees

  • Model Evaluation (Accuracy, Precision, Recall, F1)

  • Overfitting & Underfitting


PHASE 3: Advanced ML Engineering (Intermediate)

Module 3: Ensemble & Advanced ML

  • Random Forest

  • Bagging vs Boosting

  • AdaBoost

  • Gradient Boosting

  • XGBoost

  • LightGBM

  • CatBoost

  • Feature Engineering

  • Cross Validation

  • Hyperparameter Tuning

  • Handling Imbalanced Data (SMOTE)

  • ML Pipelines

  • Model Interpretability (SHAP Intro)


PHASE 4: Deep Learning

Module 4: Neural Networks

  • Perceptron Concept

  • Activation Functions

  • Forward Propagation

  • Backpropagation

  • Loss Functions

  • Optimizers

Module 5: CNN & Sequence Models

  • CNN Basics

  • Convolution & Pooling

  • Image Classification

  • RNN Basics

  • LSTM & GRU

  • Transfer Learning


PHASE 5: Computer Vision with OpenCV

Module 6: OpenCV & Vision Systems

  • Image Representation

  • Image Processing

  • Edge Detection

  • Contour Detection

  • Face Detection

  • Real-time Webcam App

  • Object Detection Concept (YOLO Intro)

  • CNN for Image Classification

  • Vision App Deployment

Projects:

✔ Face Detection App
✔ AI Attendance System


PHASE 6: Generative AI & LLM Engineering

Module 7: Generative AI Basics

  • What is Generative AI?

  • Transformers Architecture

  • Self-Attention

  • Tokenization

  • Prompt Engineering

  • Few-shot & Zero-shot

Module 8: LLM Practical Engineering

  • Working with LLM APIs

  • Embeddings

  • Vector Databases

  • Fine-Tuning Concepts

  • LLM Evaluation

  • Guardrails & Safety


PHASE 7: RAG Systems

Module 9: Retrieval-Augmented Generation

  • Document Chunking

  • Embedding Creation

  • Vector Search

  • Hybrid Search

  • Context Optimization

  • Re-ranking

  • Hallucination Reduction

Project:

✔ Custom Knowledge AI Assistant


PHASE 8: Agentic AI Engineering

Module 10: AI Agents

  • What is Agentic AI?

  • ReAct Framework

  • Tool Calling

  • Memory Systems

  • Multi-step Reasoning

  • Planning & Reflection

  • Multi-Agent Systems

  • Autonomous Workflows

  • Agent Monitoring

Project:

✔ Autonomous AI Agent


PHASE 9: Deployment & Production

Module 11: AI Deployment

  • Flask Deployment

  • Streamlit Apps

  • REST APIs

  • Docker Basics

  • Cloud Deployment (Render / Cloud Intro)

  • Monitoring & Logging

  • Production AI Challenges

Project:

✔ ML + GenAI Deployment


PHASE 10: Industry & Career Preparation

  • AI Ethics

  • Bias & Fairness

  • AI Security

  • Portfolio Building

  • GitHub Structuring

  • Resume Optimization

  • Interview Preparation

  • System Design Basics


FINAL CAPSTONE TRACK

Students will build:

✔ Spam Detection with Deployment
✔ Vision-based Attendance System
✔ Enterprise RAG System
✔ Autonomous AI Agent
✔ AI SaaS Prototype

Benefits & Outcomes

After completing this course, students will:

  • Develop strong AI engineering foundations

  • Gain expertise in modern Generative AI technologies

  • Build real-world machine learning and AI projects

  • Learn to deploy AI applications professionally

  • Create a portfolio for AI career opportunities

  • Become job-ready for AI and data science roles

Location

Pasaudh masira jayshinghnager shahdol mp

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