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Model Context Protocol for LLMs by Naveen Krishnan

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  • 1,899.00
  • 1,899.00
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BLACK & WHITE Final Release Version
Language ‏ : ‎ English
Paperback, 438 Pages, Edition 2026
A+ PDF Printed On Demand Book!
Local Printed Book!
Delivery All Over Pakistan Charges Will Apply.
Due to constant currency fluctuation, prices are subject to change with or without notice.

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Description

Model Context Protocol for LLMs: Build secure, scalable, and context-aware AI agents using a standardized protocol

Naveen Krishnan

Build scalable, secure LLM applications with the Model Context Protocol and design modular, context-aware multi-agent systems for real-world deployment

Key Features
Build modular, production-ready AI agents using the Model Context Protocol (MCP)
Integrate MCP with LangChain, AutoGen, and RAG for multi-agent collaboration
Apply security, performance optimization, and evaluation patterns for real-world deployment

Book Description
Modern LLM applications often fail due to weak context management, fragile tool integration, and poorly coordinated agents. To address these challenges, this book provides a practical blueprint for building reliable, scalable AI systems using the Model Context Protocol (MCP), an open standard for interoperable AI architectures.

You’ll explore why context is the missing layer in many AI deployments and how MCP formalizes it. Through clear explanations and practical examples, you’ll design modular components such as resource providers, tool providers, gateways, and standardized interfaces. You’ll also integrate MCP with LangChain, AutoGen, and RAG pipelines to build collaborative, context-aware multi-agent systems.

You’ll learn how to apply MCP to multimodal applications, personalization engines, and enterprise knowledge management solutions, while evaluating and benchmarking implementations for production readiness and implementing authentication, authorization, and scaling strategies for secure cloud deployments.

Written by a data and AI solutions engineer with over 17 years of experience at Microsoft and Fortune 500 organizations, this guide combines architectural depth with hands-on implementation. By the end, you’ll be able to design, build, and deploy secure, reusable MCP-based LLM systems that scale confidently in production.

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