Build a production-ready multi-agent AI framework from scratch using MCP and A2A to orchestrate powerful agent workflows
Free with your book: DRM-free PDF version + access to Packt's next-gen Reader*
Frustrated by opaque agent frameworks that hide how things work? This book gives you complete control by guiding you through building a fully functional, extensible agentic AI framework in Python without relying on external orchestration tools.
You’ll begin by implementing a simple tool-using agent, and then gradually extend its capabilities with structured tool schemas, user interfaces, and memory via the Model Context Protocol (MCP). From there, you’ll build collaborative multi-agent systems powered by Agent-to-Agent (A2A) messaging and deploy them in realistic environments. Along the way, you’ll explore secure tool invocation, message routing, observability, and human-in-the-loop workflows.
With annotated code, deep engineering insights, and practical deployment patterns, this hands-on guide equips you to build AI agents that reason, plan, act, and adapt, whether you’re shipping production systems or experimenting with cutting-edge LLM-based architectures.
Written by Gigi Sayfan, who builds AI agent infrastructure at Perplexity and is a bestselling author with decades of experience in AI and distributed systems, this book gives you the tools and knowledge to engineer your own advanced agentic systems.
*Email sign-up and proof of purchase required
This book is essential for AI engineers, ML practitioners, and software architects building agentic systems with large language models. It’s also ideal for DevOps engineers and technical leaders seeking deep insights into building and scaling autonomous AI workflows. Python coding skills and basic familiarity with LLMs are recommended.
Les informations fournies dans la section « Synopsis » peuvent faire référence à une autre édition de ce titre.
Gigi Sayfan is a member of the AI agents infra team at Perplexity, focused on building large-scale environments and harnesses for AI agents. He brings over 30 years of software development experience across domains, including instant messaging, chip fabrication process control, embedded multimedia for game consoles, brain-inspired machine learning, custom browser development, web services for distributed 3D game platforms, IoT sensors, and virtual reality. He has written production code in Go, Python, Java, C#, C++, and TypeScript/JavaScript. His expertise includes AI agents, generative AI, cloud-native technologies, DevOps, databases, networking, and distributed systems. Gigi has authored books and articles on Kubernetes and microservices.
Les informations fournies dans la section « A propos du livre » peuvent faire référence à une autre édition de ce titre.
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Paperback or Softback. Etat : New. Design Multi-Agent AI Systems Using MCP and A2A: Engineer your own Python-based agentic AI framework with tool use, memory, and multi-agent workflows. Book. N° de réf. du vendeur BBS-9781806116478
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Paperback. Etat : new. Paperback. Build a production-ready multi-agent AI framework from scratch using MCP and A2A to orchestrate powerful agent workflowsFree with your book: DRM-free PDF version + access to Packt's next-gen Reader*Key FeaturesBuild Python-based AI agents without relying on third-party orchestration frameworksDesign production-ready multi-agent systems using A2A messagingIntegrate memory and context with MCP to create adaptive and stateful agentic AI frameworksBook DescriptionFrustrated by opaque agent frameworks that hide how things work? This book gives you complete control by guiding you through building a fully functional, extensible agentic AI framework in Python without relying on external orchestration tools.Youll begin by implementing a simple tool-using agent, and then gradually extend its capabilities with structured tool schemas, user interfaces, and memory via the Model Context Protocol (MCP). From there, youll build collaborative multi-agent systems powered by Agent-to-Agent (A2A) messaging and deploy them in realistic environments. Along the way, youll explore secure tool invocation, message routing, observability, and human-in-the-loop workflows.With annotated code, deep engineering insights, and practical deployment patterns, this hands-on guide equips you to build AI agents that reason, plan, act, and adapt, whether youre shipping production systems or experimenting with cutting-edge LLM-based architectures.Written by Gigi Sayfan, who builds AI agent infrastructure at Perplexity and is a bestselling author with decades of experience in AI and distributed systems, this book gives you the tools and knowledge to engineer your own advanced agentic systems.*Email sign-up and proof of purchase requiredWhat you will learnDesign and implement tool-using AI agents from the ground upBuild modular components for extensible agent frameworksCreate secure and observable tools with structured inputsIntegrate agents with chat UIs such as Slack and ChainlitLeverage MCP for context handling and agent memoryOrchestrate collaborative agent workflows using A2ADebug and deploy agents in production-like environmentsExplore future-ready agent capabilities and GenUX designWho this book is forThis book is essential for AI engineers, ML practitioners, and software architects building agentic systems with large language models. Its also ideal for DevOps engineers and technical leaders seeking deep insights into building and scaling autonomous AI workflows. Python coding skills and basic familiarity with LLMs are recommended. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. N° de réf. du vendeur 9781806116478
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Paperback. Etat : New. Master the design of agentic AI systems from the ground up. This hands-on guide shows you how to build your own framework in Python, integrate memory and context with MCP, and implement multi-agent collaboration through A2A protocols. N° de réf. du vendeur LU-9781806116478
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Paperback. Etat : New. Master the design of agentic AI systems from the ground up. This hands-on guide shows you how to build your own framework in Python, integrate memory and context with MCP, and implement multi-agent collaboration through A2A protocols. N° de réf. du vendeur LU-9781806116478
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