LangChain- Agentic AI Engineering with LangChain & LangGraph

Build AI Agents with LangChain and LangGraph RAG, Tools, MCP and Production-Ready Agentic AI Systems (Python)

What you'll learn

  • Become proficient in LangChain
  • Have end to end working LangChain based generative AI agents
  • Prompt Engineering Theory: Chain of Thought, ReAct, Few Shot prompting and understand how LangChain is build under the hood
  • Context Engineering
  • Understand how to navigate inside the LangChain opensource codebase
  • Large Language Models theory for software engineers
  • LangChain: Lots of chains Chains, Agents, DocumentLoader, TextSplitter, OutputParser, Memory
  • RAG, Vectorestores/ Vector Databases (Pinecone, FAISS)
  • Model Context Protocol (MCP)
  • LangGraph

Requirements

  • This is not a beginner course. Basic software engineering concepts are needed
  • I assume students will be familiar software engineering subjects such as: git, python, pipenv, environment variables, classes, testing and debugging
  • No Machine Learning experience is needed.

Who this course is for

  • Software Engineers that want to learn how to build Generative AI based applications with LangChain and LangGraph
  • Developers that want to learn how to build Generative AI based applications with LangChain and LangGraph
  • Engineers that want to learn how to build Generative AI based applications with LangChain and LangGraph

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11.64 GB Total Size

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