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Mastering Langchain and Langgraph - by  Ankur Kulshreshtha (Paperback) - 1 of 1

Mastering Langchain and Langgraph - by Ankur Kulshreshtha (Paperback)

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Highlights

  • Mastering LangChain and LangGraph is a comprehensive, hands-on guide for developers, data scientists, and AI practitioners looking to build robust, production-ready applications using large language models, retrieval-augmented generation (RAG), and agentic systems.
  • About the Author: Ankur Kulshreshtha is a Data Architect at Infosys with 15 years of experience in Data Engineering, Machine Learning, and Generative AI.
  • 741 Pages
  • Computers, Artificial Intelligence

Description



Book Synopsis



Mastering LangChain and LangGraph is a comprehensive, hands-on guide for developers, data scientists, and AI practitioners looking to build robust, production-ready applications using large language models, retrieval-augmented generation (RAG), and agentic systems.

The book begins by establishing a clear foundation, introducing the LLM ecosystem and core concepts such as RAG and AI agents, before guiding readers into the LangChain framework and its practical abstractions. Readers will explore essential building blocks including chat models, prompt templates, and structured output generation, followed by in-depth coverage of document loaders, text splitters, embeddings, vector stores, and retrievers--key components for creating scalable, knowledge-grounded AI systems. As the book progresses, it introduces LangGraph, enabling readers to design stateful, multi-step, and resilient agent workflows with fine-grained control over execution. Advanced chapters dive into tools and the Model Context Protocol (MCP), checkpointing, memory management, and middleware design, providing the infrastructure needed to manage complexity in real-world applications. Topics such as human-in-the-loop workflows, time travel, and streaming demonstrate how to build systems that are transparent, debuggable, and interactive. The book concludes with a focused exploration of LangChain agents, tying together tools, memory, and control flow into cohesive agentic architectures.

Blending conceptual clarity with practical implementation guidance, this book equips readers with the skills to design, build, and scale modern AI applications that go beyond simple prompts--delivering intelligent, reliable, and extensible systems ready for production use.

    What you will learn: Understand the LLM ecosystem, including Retrieval-Augmented Generation (RAG) and agent-based AI systems. Build scalable, knowledge-grounded applications using LangChain components like prompts, embeddings, vector stores, and retrievers. Design structured, stateful, and multi-step workflows with LangGraph for reliable agent execution. Implement tools, memory, checkpointing, and middleware to manage complexity in real-world AI applications. Create production-ready agentic systems with human-in-the-loop, streaming, and debugging capabilities.
Who this book is for:

This book is for software developers, data scientists, and AI practitioners who want to move beyond basic prompt engineering and build production-ready AI applications using large language models. It is ideal for engineers working with LangChain who want a deeper, structured understanding of its components and how they fit together in real-world systems.



From the Back Cover



Mastering LangChain and LangGraph is a comprehensive, hands-on guide for developers, data scientists, and AI practitioners looking to build robust, production-ready applications using large language models, retrieval-augmented generation (RAG), and agentic systems.

The book begins by establishing a clear foundation, introducing the LLM ecosystem and core concepts such as RAG and AI agents, before guiding readers into the LangChain framework and its practical abstractions. Readers will explore essential building blocks including chat models, prompt templates, and structured output generation, followed by in-depth coverage of document loaders, text splitters, embeddings, vector stores, and retrievers--key components for creating scalable, knowledge-grounded AI systems. As the book progresses, it introduces LangGraph, enabling readers to design stateful, multi-step, and resilient agent workflows with fine-grained control over execution. Advanced chapters dive into tools and the Model Context Protocol (MCP), checkpointing, memory management, and middleware design, providing the infrastructure needed to manage complexity in real-world applications. Topics such as human-in-the-loop workflows, time travel, and streaming demonstrate how to build systems that are transparent, debuggable, and interactive. The book concludes with a focused exploration of LangChain agents, tying together tools, memory, and control flow into cohesive agentic architectures.

Blending conceptual clarity with practical implementation guidance, this book equips readers with the skills to design, build, and scale modern AI applications that go beyond simple prompts--delivering intelligent, reliable, and extensible systems ready for production use.



About the Author



Ankur Kulshreshtha is a Data Architect at Infosys with 15 years of experience in Data Engineering, Machine Learning, and Generative AI. He has worked with leading Telecom and Media clients such as British Telecom, AT&T, DirecTV, Cisco, and Singtel. Ankur is an expert in designing enterprise solutions for AI and data-driven projects and is a member of Infosys' GenAI COE, driving R&D for tailored Generative AI solutions. Ankur holds an M.Tech in Software Systems with a specialization in Data from BITS Pilani. With skills in AWS, Azure, TensorFlow, LangChain, and various database technologies, he combines technical proficiency with a passion for sharing knowledge through his writing and consulting work.

Dimensions (Overall): 9.21 Inches (H) x 6.14 Inches (W) x 1.53 Inches (D)
Weight: 2.33 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 741
Genre: Computers
Sub-Genre: Artificial Intelligence
Publisher: Apress
Theme: General
Format: Paperback
Author: Ankur Kulshreshtha
Language: English
Street Date: October 8, 2026
TCIN: 1014342146
UPC: 9798868829451
Item Number (DPCI): 247-64-4816
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 1.53 inches length x 6.14 inches width x 9.21 inches height
Estimated ship weight: 2.33 pounds
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