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Agent-to-Agent Communication: A Hands-On Guide to Building Multi-Agent Systems with LangGraph, MCP, and LLM Workflows

by Lynne Blake
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Current price ₹1,954.00
Original price ₹2,242.00
Original price ₹2,242.00
Original price ₹2,242.00
(-13%)
₹1,954.00
Current price ₹1,954.00

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Book cover type: Paperback
  • ISBN13: 9798277856741
  • Binding: Paperback
  • Subject: N/A
  • Publisher: Independently Published
  • Publisher Imprint: Independently Published
  • Publication Date:
  • Pages: 172
  • Original Price: GBP 17.24
  • Language: English
  • Edition: N/A
  • Item Weight: 309 grams
  • BISAC Subject(s): Software Development & Engineering / Systems Analysis & Design

Unlock the next generation of AI engineering with modern, stateful, and production-ready multi-agent systems.
As LLMs evolve beyond single-step reasoning, companies are shifting toward collaborative AI agents that can plan, coordinate, correct each other, and run reliably for hours or days. Agent-to-Agent Communication is a practical, end-to-end guide to building these systems using LangGraph, the Model Context Protocol (MCP), and modern LLM workflows.
Whether you're an AI engineer, developer, researcher, or team lead, this book shows you exactly how to design, debug, deploy, and scale multi-agent architectures used in real production environments.
What You'll Learn
Build modern agent architectures
Move beyond single-agent ReAct loops
Design persistent, parallel, long-running workflows
Structure systems with nodes, states, supervisors, and shared memory
Master LangGraph
StateGraph, MessageGraph, and Pregel-based models
Streaming, events, interrupts, and human-in-the-loop flows
Checkpointers, persistence, and time-travel debugging
Use MCP for real interoperability
Vendor-neutral tool calling
Cross-model communication (OpenAI, Anthropic, Gemini, Llama, Mistral, etc.)
Build and deploy production MCP servers
Implement production-grade patterns
Hierarchical supervisors
Voting, debate, and reflection loops
Blackboard and message-passing systems
Peer-to-peer agent networks
Failure simulation, observability, and debugging
Deploy at scale
Containerization and Kubernetes
Cost optimization and caching
Rate limiting, backpressure, resilience
Who This Book Is For
AI/ML Engineers building advanced LLM systems
Software developers adding intelligent automation
Technical founders and product teams
Researchers exploring agent collaboration
Anyone moving from prompts → full AI systems
No hype-just real architectures, real patterns, and real code that runs today.
Why This Book Matters
Multi-agent systems represent a phase shift in what AI can do. With vendor-neutral protocols like MCP, robust frameworks like LangGraph, and modern LLMs, developers can finally build AI teams that are persistent, reliable, and collaborative.
This book gives you every tool, pattern, and workflow you need-end to end.

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