Generative AI Training Course

Mastering Generative AI for Tomorrow’s Innovations with Agentic AI and RAG Applications.

What you'll learn

  • Hands-on coding skills to implement AI & ML models.
  • Supervised, unsupervised & reinforcement learning techniques.
  • Understand statistics, probability, and optimization for building AI systems.
  • Build deep learning models for text, images, and structured data.
  • Create NLP applications like chatbots, sentiment analysis, and text classification
  • Develop CNN models for computer vision, image recognition, and object detection.
  • Use Generative AI to create text, images, and intelligent content
  • Work with popular Large Language Models such as GPT, Gemini, Llama, and Groq.
  • Explore access and fine-tune open-source AI models.
  • Build AI-powered workflows & intelligent applications.
  • Advanced methods like chaining, PEFT, RAG & context optimization.
  • Design autonomous AI agents for decision-making & automation.
  • Create Retrieval-Augmented Generation (RAG) applications for real-world use cases
  • Build AI agents & workflows without programming.
  • End-to-end applications combining ML, GenAI & AI Agents.

Our Training Process

Practical Session

Assignment

Projects

Resume Building

Interview Preparation

Be Job Ready

Practical Session

Assignment

Projects

Be Job Ready

Interview Preparation

Resume Building

Key Highlights

  • Personalised career coach
  • 90% Practical Training
  • Certification
  • 100% Placement Assistance
  • Study material
  • Instant doubt solving
  • Mock Interviews
  • Case studies and Projects

58 Hrs

Training Duration

25000+

Students Trained

1000+

Hiring Companies

12.5 LPA

Highest Fresher Salary

Generative AI Training Course

Python Fundamentals
  • Python Basics: Syntax, Variables, Data Types
  • Input and Output Operations
  • Operators and Expressions
  • Conditional Statements
  • Loops
  • Data Structures: Lists, Tuples, Sets, Dictionaries
  • Comprehensions and Iterations
  • Hands-On Exercises: Scripts, condition checks, sorting data, dictionary
2
File Handling & Data Wrangling with NumPy
  • Reading & Writing Files
  • CSV Parsing
  • Error Handling
  • NumPy Arrays & Operations
  • Indexing, Slicing, Reshaping
  • Mathematical & Aggregation Functions
  • Multi-Dimensional Arrays
  • Hands-On Exercises: File parsing, CSV analytics, NumPy statistics
3
Data Analysis with Pandas
  • Pandas DataFrames & Series
  • Loading Data (CSV, Excel, SQL)
  • Filtering, Sorting, Grouping
  • Handling Missing Data
  • Data Cleaning & Transformation
  • Date & Time Handling
  • Merging & Joining DataFrames
  • Hands-On Exercises: Sales analysis, data cleaning, merging datasets
4
Exploratory Data Analysis & Visualization
  • Descriptive Statistics
  • Matplotlib & Seaborn Visuals
  • Correlation Analysis
  • Outlier Detection
  • Advanced Visualizations
  • Multi-Panel Charts
  • Hands-On Exercises: EDA reports, heatmaps, dashboards
5
Advanced Data Management & Databases
  • SQLAlchemy Basics
  • ORM Queries
  • SQL to Pandas Integration
  • Writing Data Back to Databases
  • Views, Stored Procedures, Optimization
  • Hands-On Exercises: Database analytics & reporting
6
Statistics for Data Analytics
  • Univariate, Bivariate & Multivariate Analysis
  • Distributions & Probability
  • Hypothesis Testing
  • Confidence Intervals
  • Correlation & Covariance
  • Inferential Statistics
  • Hands-On Exercises: Statistical analysis using real datasets
7
Introduction to Machine Learning
  • ML Concepts & Use Cases
  • Supervised vs Unsupervised Learning
  • Regression & Classification
  • Forecasting
  • Hands-On Exercises: Churn analysis & fraud analysis
8
ML with Scikit-Learn
  • Regression modeling
  • Feature scaling
  • Model evaluation
  • K-Means clustering
  • Hands-On: House price prediction, model optimization
9
Supervised & Unsupervised ML
  • Linear & logistic regression
  • Decision trees & random forests
  • SVM, KNN
  • PCA & LDA
  • Hands-On: Stock prediction, customer segmentation
10
Deep Learning Foundations
  • Neural networks
  • TensorFlow & PyTorch setup
  • Tensors & computation graphs
  • Basics of building and training models
  • Hands-On: Build basic neural networks, Visualize computation graphs in TensorFlow
11
Deep Neural Architectures
  • Artificial Neural Networks (ANN)
  • Convolutional Neural Networks (CNN)
  • Recurrent Neural Networks (RNN)
  • Transfer learning
  • Hands-On: ANN, CNN & RNN implementations
12
Advanced Neural Networks
  • Long Short-Term Memory Networks (LSTM)
  • Graph Neural Networks (GNN)
  • Advanced Recurrent Architectures: Bidirectional RNN, GRU
  • Hyperparameter tuning
  • Hands-On: Time-series & graph models
13
NLP & Text Analytics
  • Introduction to NLP concepts
  • Text preprocessing
  • Tokenization & stemming
  • NLTK
  • Text classification
  • Sentiment analysis
  • Hands-On: Spam & sentiment models, Preprocess a text dataset using NLTK, Build a text classification model, Experiment with a text generation model
14
Foundations of Generative AI
  • Evolution of Generative AI: From ML to LLMs
  • Transformer architecture: Attention, encoder-decoder, self-attention
  • Types of LLMs: GPT, BERT, T5, Falcon, Claude
  • Closed-source vs Open-source models
15
LLMs, Prompt Engineering & OpenAI
Integration
  • Prompt engineering
  • Understanding Chat, Completion, and Instruction-tuned models
  • Prompt Engineering techniques: Few-shot, zero-shot, chain-of-thought
  • OpenAI API: Usage, tokens, parameters
  • API integration with Python
  • Fine-Tuning & Customizing LLMs
  • Instruction tuning using domain-specific data
  • Use case: Creating a healthcare/legal/HR domain assistant
  • Best practices & deployment considerations
16
RAG Applications
  • RAG architecture
  • Text chunking, embedding models, similarity search
  • Use cases: Document Q&A, PDF bots, private chatbots
  • Combining LLMs with external knowledge
17
Vector Databases & Embeddings
  • What is a Vector DB
  • Choosing the right Vector DB (FAISS vs Pinecone vs Weaviate)
  • How embedding models work
  • Storing, indexing, and retrieving large document
18
Build AI Agents using LangChains
  • What is an AI Agent?
  • LangChain Agent architecture
  • Adding tools: search, calculator, DB access, email
  • Memory integration: BufferMemory, SummaryMemory
  • Build chatbots that reason and act
19
Multi-Agent Systems & LangGraph
  • Introduction to LangGraph for stateful workflows
  • Nodes, edges, state sharing
  • Multi-agent collaboration (e.g., PM → Dev → Analyst agents)
  • Conditional workflows, retries, and dynamic decision-making
  • Use cases: Autonomous workflows, research agents, AI coworkers
20
Deploying Generative AI & Agentic
Applications
  • FastAPI / LangServe to deploy your solution as an API
  • Build UIs using Streamlit / Gradio
  • Deployment platforms: Vercel, AWS, Streamlit Cloud
  • Logging, monitoring, human-in-the-loop workflows
21
MLOps with GCP
  • Introduction to MLOps
  • MLOps vs. DevOps
  • SDLC Basics
  • What is Cloud Computing
  • GCP Introduction
22
Version Control System
  • Git Essentials
  • Configuring Git
  • Branching
  • Git Workflow
  • Repo
  • Git Commands
  • Tracking and managing changes to code
  • Source Code Management
  • Tracking and Saving Changes in Files
23
CI/CD for ML Models
  • Introduction to CI/CD
  • CI/CD Challenges
  • CI/CD Implementation in ML
  • Popular DevOps Tools
24
Docker & Kubernetes for ML Deployment
  • Docker Architecture
  • Docker for Machine Learning
  • Continuous Deployment
  • Writing a Dockerfile to Create an Image
  • Installing Docker Compose
  • Configuring Local Registry
  • Container Orchestration
  • Application Deployment
  • Kubernetes Core Concepts
25
MLOPS with AWS SageMaker
  • Uploading datasets and training models in the cloud
  • Hosting real-time and batch endpoints
  • Autoscaling, monitoring, and billing control
26
End-to-End GenAI & RAG Projects for Data Scientists
  • Intelligent Agentic Ai Personal Assistant
  • Customer Support App
  • AI Resume Analyser
  • Product Recommendation System for Ecommerce
  • Social Media Sentiment Analysis and Trend Prediction/li>
  • Automated Model Deployment and Monitoring for
    Customer Churn

Master 35+ Paid tools, including AI Powered Platforms

Skills you will gain

Course Certification

Become a Certified Generative AI Expert with TryCatch Classes and enhance your career prospects to the next level.

This certificate serves as an official badge of your successful Machine Learning training course completion, highlighting your expertise.

Students Testimonial

Students Reviews

TryCatch Classes offers an excellent learning environment. All the teaching staff is exceptional. As a newcomer to web development, all concepts were explained clearly.
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dnone

Full Stack Developer
Company

Hi my name is Bhagyashri Gunjate. I have completed full stack web development course from Trycatch and saying this happily that I also got my first job from TryCatch. Although I have gap of 4 years after completing my engineering Mohnish and Mehul Sir gave me confidence that I can do it and at this age also I can be succeed in web development field. Talented and passionate faculty helps me to resolve my query and made my base and logic strong. They initiated new ways of thinking to improve project query and my personal performance as well. Also this helped me to improve my speed to produce codes faster and get things done more accurately. Mehul Sir and Monish Sir was so helpful that they always kept my motivation and confidence high. They gave me projects that are more skilful and as per industry standards which directly helps me to get my first job journey. I highly recommend Try Catch classes to everyone who wanted to upscale their knowledge and career in Web Development field.
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dnone

Full Stack Developer
Company

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Jane Doe

Software engineer
Ola

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Jane Doe

Software engineer
Ola

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Jane Doe

Software engineer
Ola

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Jane Doe

Software engineer
Ola

Genuine reviews for our Generative AI Training Course

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Darshan


Machine Learning Engineer

First and foremost, I was thoroughly impressed with the quality of education, it was on point of my expectations. They were able to break down complex concepts into easily digestible pieces, and their explanations were always clear and concise. Also every faculty present there is the industry expert himself.I also appreciated the emphasis that Try Catch Tech placed on hands-on learning. Rather than simply lecturing about the topic, the classes provided ample opportunities to put theory into practice. This approach not only helped me understand the concepts better, but it also gave me a sense of confidence when working with these technologies.Another aspect of Try Catch Tech that stood out to me was the supportive community that surrounded the classes. From fellow students to instructors, everyone was incredibly encouraging and willing to help each other out. This made for a collaborative learning environment that I truly appreciated. And their support is so much that even after completing my course I was always welcomed to sit and study there in the classes.Overall, I would highly recommend Try Catch Tech to anyone looking to learn anything from the course they offer. Personally I did python and machine learning which was a great experience for me. The quality of instruction, hands-on learning opportunities, and supportive community make it an excellent choice for both beginners and experienced programmers alike. Thank you, Try Catch Tech, for a wonderful learning experience!
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Sudarshan Paranjape


Machine Learning Engineer

I completed TryCatch Group’s Data Science course, and it was an enlightening journey! The comprehensive curriculum covered essential topics, and the instructors were knowledgeable and approachable. Hands-on projects boosted my confidence, and provided ample resources. The supportive team promptly addressed queries, and industry case studies enriched the experience. The mentorship provided by Mohnish sir and Mehul sir was truly exceptional! Their expertise and passion for data science shone through in every aspect of the course. Highly recommended for all skill levels, this course lays a strong foundation for a successful data science career. Thank you, TryCatch Group, for this amazing learning opportunity!
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Mansi Rathod


Machine Learning Engineer

I wanted to go to USA to do my Masters in Data Science. So I joined Trycatch and completed the Data Science course at TryCatch. Anyone who’s willing to pursue Data Science in the future but has no to little knowledge about it, this class will definitely help you enhance your knowledge. Mehul and Mohnish being knowledgeable, will be there to guide you whenever needed. Overall experience was really good so I would definitely recommend this course.
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Mansi Rathod


Machine Learning Engineer

I wanted to go to USA to do my Masters in Data Science. So I joined Trycatch and completed the Data Science course at TryCatch. Anyone who’s willing to pursue Data Science in the future but has no to little knowledge about it, this class will definitely help you enhance your knowledge. Mehul and Mohnish being knowledgeable, will be there to guide you whenever needed. Overall experience was really good so I would definitely recommend this course.
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Jamil Shaikh


Machine Learning Engineer

I have done Data Science course from Trycatch Classes. I would recommend this course as it gives good idea about the field also the staff are friendly and helpful. This course has helped me to understand my subjects easily.
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Jamil Shaikh


Machine Learning Engineer

I have done Data Science course from Trycatch Classes. I would recommend this course as it gives good idea about the field also the staff are friendly and helpful. This course has helped me to understand my subjects easily.
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Sujwal Shetty


Machine Learning Engineer

I had taken Python+ ML course here. The overall experience was very good, I got the internal switch to Data Science domain which i was looking for in my organisation. The faculty had great knowledge within the subject.
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Pankit Rojasra


Machine Learning Engineer

In my experience, this class is hands-down the best option if you’re interested in a career in IT or computer coding. I completed the Data Science course here, and I can say all the faculty are highly knowledgeable, experienced, and effective instructors. Following the course, I secured an internship in the backend field with an insurance company.
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Software Developer

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Software Developer

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Student's Portfolio

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UX-UI Designer

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Mansi Sanghani

UX-UI Designer

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Mansi Sanghani

UX-UI Designer

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Mansi Sanghani

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Mansi Sanghani

UX-UI Designer

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Mansi Sanghani

UX-UI Designer

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Mansi Sanghani

UX-UI Designer

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Mansi Sanghani

UX-UI Designer

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Mansi Sanghani

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Mansi Sanghani

UX-UI Designer

Success Stories

Frequently Asked Questions (FAQs)

What is the duration of the course?

Total duration is approximately 4 months along with Live Projects.

Is there 100% Placement Guarantee after the course is over?

We provide 100% placement assistance in our Deep Learning & Generative AI training course in Mumbai.

Are there any prerequisites before starting Generative AI?

It is required to know Python before starting this Deep Learning & Generative AI in Mumbai.

Who teaches Generative AI?

At TryCatch, our team consists of seasoned experts with over 15 years of experience. A skilled Data Scientist will be guiding students, encouraging them to ask questions without hesitation, and enabling us to effortlessly address all your inquiries.

Is the course Online or Offline?

This Deep Learning & Generative AI course is available offline & online both. You may choose whatever is feasible for you.
Offline course can be done at our Borivali Branch in Mumbai.
Online Live Course can be done on Zoom.

Who can learn Deep Learning & Generative AI?

This course is designed for everyone, even if you’re studying Commerce, Arts, or Mechanical subjects, or if you’re still in school. It doesn’t matter what your background is, you can definitely learn this course.

Do I need prior experience inDeep Learning & Generative AI?

No, prior experience is not required.

What software and tools do I need for this course?

All the tools required for this training will be installed during the course

Will I receive a certificate upon course completion?

Upon completion of the course, you will receive an official global Deep Learning & Generative AI. This certificate serves as an official badge of your successful course completion, highlighting your expertise.

Can I interact with instructors and ask questions during the course?

Absolutely! Our instructors are always available to answer all your questions and solve your doubts.

Are there any real-world projects or case studies in the course?

Yes, we incorporate real-world projects and case studies into the course to help you apply what you’ve learned in practical scenarios.

Is there a money-back guarantee if I’m not satisfied with the course?

We offer a satisfaction guarantee. If you are not satisfied with the course within a specified timeframe, you can request a refund.

Companies where our students are placed

Shoutout from Arjun Kapoor
and Vidya Balan

Here's everything you're going to get

  • Easy-to-follow modules
  • Study Materials
  • Tutorials
  • Interview Q&A Library
  • Industry Oriented LIVE Projects
  • Mock Interviews
  • Access to Private Jobs Group
  • Be Job Ready

INSIGHTS

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