Mistral AI Development: AI with Mistral, LangChain & Ollama

Learn AI-powered document search, RAG, FastAPI, ChromaDB, embeddings, vector search, and Streamlit UI (AI)


Apply Coupon Code: FEBFREE02

What you’ll learn

  • Set up and configure Mistral AI & Ollama locally for AI-powered applications.
  • Extract and process text from PDFs, Word, and TXT files for AI search.
  • Convert text into vector embeddings for efficient document retrieval.
  • Implement AI-powered search using LangChain and ChromaDB.
  • Develop a Retrieval-Augmented Generation (RAG) system for better AI answers.
  • Build a FastAPI backend to process AI queries and document retrieval.
  • Design an interactive UI using Streamlit for AI-powered knowledge retrieval.
  • Integrate Mistral AI with LangChain to generate contextual responses.
  • Optimize AI search performance for faster and more accurate results.
  • Deploy and run a local AI-powered assistant for real-world use cases.

This course includes:

  • 2 hours on-demand video
  • 6 downloadable resources
  • Access on mobile and TV
  • Full lifetime access
  • Closed captions
  • Certificate of completion

Course content

6 sections • 20 lectures • 2h 3m total length

  • Certificate of Completion
  • What is Mistral AI? Overview of Mistral 7B, Mistral-Instruct, and Mixtral models
  • What is Ollama? How it enables running LLMs locally
  • Why use Ollama for local AI applications? Advantages & privacy benefits
  • How does Mistral AI compare to GPT-4 and LLaMA?
  • Installing Ollama & Running Mistral Locally – Step-by-step setup
  • Up and Running with Python

  • Install and configure Ollama to run Mistral AI locally
  • Install required Python libraries
  • Run a test query to verify Mistral AI is working

  • Extract text from PDFs, Word, and TXT files
  • Convert text into embeddings for fast searching (using LangChain + ChromaDB)
  • Store indexed documents for efficient retrieval

  • Build a vector search pipeline to find relevant documents
  • Implement retrieval-augmented generation (RAG) for better answers
  • Connect Mistral AI via LangChain to generate AI-powered summaries

  • Create an API endpoint to process user queries
  • Integrate document retrieval with Mistral AI
  • Test the API using Postman or Python requests

  • Streamlit, file upload functionality and chat-like interface for user queries

Description

Are you ready to build AI-powered applications with Mistral AI, LangChain, and Ollama? This course is designed to help you master local AI development by leveraging retrieval-augmented generation (RAG), document search, vector embeddings, and knowledge retrieval using FastAPI, ChromaDB, and Streamlit. You will learn how to process PDFs, DOCX, and TXT files, implement AI-driven search, and deploy a fully functional AI-powered assistant—all while running everything locally for maximum privacy and security.

What You’ll Learn in This Course?

  • Set up and configure Mistral AI and Ollama for local AI-powered development.
  • Extract and process text from documents using PDF, DOCX, and TXT file parsing.
  • Convert text into embeddings with sentence-transformers and Hugging Face models.
  • Store and retrieve vectorized documents efficiently using ChromaDB for AI search.
  • Implement Retrieval-Augmented Generation (RAG) to enhance AI-powered question answering.
  • Develop AI-driven APIs with FastAPI for seamless AI query handling.
  • Build an interactive AI chatbot interface using Streamlit for document-based search.
  • Optimize local AI performance for faster search and response times.
  • Enhance AI search accuracy using advanced embeddings and query expansion techniques.
  • Deploy and run a self-hosted AI assistant for private, cloud-free AI-powered applications.

Key Technologies & Tools Used

  • Mistral AI – A powerful open-source LLM for local AI applications.
  • Ollama – Run AI models locally without relying on cloud APIs.
  • LangChain – Framework for retrieval-based AI applications and RAG implementation.
  • ChromaDB – Vector database for storing embeddings and improving AI-powered search.
  • Sentence-Transformers – Embedding models for better text retrieval and semantic search.
  • FastAPI – High-performance API framework for building AI-powered search endpoints.
  • Streamlit – Create interactive AI search UIs for document-based queries.
  • Python – Core language for AI development, API integration, and automation.

Why Take This Course?

  • AI-Powered Search & Knowledge Retrieval – Build document-based AI assistants that provide accurate, AI-driven answers.
  • Self-Hosted & Privacy-Focused AI – No OpenAI API costs or data privacy concerns—everything runs locally.
  • Hands-On AI Development – Learn by building real-world AI projects with LangChain, Ollama, and Mistral AI.
  • Deploy AI Apps with APIs & UI – Create FastAPI-powered AI services and user-friendly AI interfaces with Streamlit.
  • Optimize AI Search Performance – Implement query optimization, better embeddings, and fast retrieval techniques.

Who Should Take This Course?

  • AI Developers & ML Engineers wanting to build local AI-powered applications.
  • Python Programmers & Software Engineers exploring self-hosted AI with Mistral & LangChain.
  • Tech Entrepreneurs & Startups looking for affordable, cloud-free AI solutions.
  • Cybersecurity Professionals & Privacy-Conscious Users needing local AI without data leaks.
  • Data Scientists & Researchers working on AI-powered document search & knowledge retrieval.
  • Students & AI Enthusiasts eager to learn practical AI implementation with real-world projects.

Course Outcome: Build Real-World AI Solutions

By the end of this course, you will have a fully functional AI-powered knowledge assistant capable of searching, retrieving, summarizing, and answering questions from documents—all while running completely offline.

Enroll now and start mastering Mistral AI, LangChain, and Ollama for AI-powered local applications.

Who this course is for:

  • Anyone Curious About AI who wants to build practical AI applications without prior experience!
  • Students & Learners eager to gain hands-on experience with AI-powered search tools.
  • Cybersecurity & Privacy-Conscious Users who prefer local AI models over cloud solutions.
  • Python Programmers looking to enhance their skills with AI frameworks like LangChain.
  • Researchers & Knowledge Workers needing AI-based document search assistants.
  • Tech Entrepreneurs & Startups exploring self-hosted AI solutions.
  • Backend Engineers who want to implement AI-powered APIs using FastAPI.
  • Software Developers interested in building AI-driven document retrieval systems.
  • Data Scientists & ML Engineers looking to integrate AI search into real-world projects.
  • AI Enthusiasts & Developers who want to build local AI-powered applications.

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🎫 After adding the course into Cart at Checkout page, Apply Coupon Code➛.           FEBFREE02               Note:- After applying coupon, if it says ”This coupon has exceeded its maximum possible redemptions…”, then it means you’re Late, and first 500 coupons already redeemed.


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