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{ "item_title" : "Agentic AI Technical Reference Vol 1", "item_author" : [" Rashmi Patel "], "item_description" : "Build production-ready AI agents with confidence.Agentic AI is transforming how intelligent software is designed. Modern AI systems no longer generate text alone-they reason, plan, use tools, maintain memory, collaborate with other agents, recover from failures, and execute complex workflows with minimal human intervention.This technical reference explains how these systems are designed, implemented, tested, secured, and deployed in real-world production environments.Rather than focusing on isolated concepts, this book connects the complete Agentic AI ecosystem-from autonomous reasoning and multi-agent orchestration to deployment infrastructure, evaluation frameworks, security controls, and domain-specific applications.Inside this reference you will learn how to design intelligent systems using modern frameworks including LangGraph, CrewAI, Model Context Protocol (MCP), Claude Code, AWS Bedrock, Docker, Kubernetes, and other production technologies. Every major topic is supported with architecture diagrams, implementation guidance, engineering practices, and practical Python examples.Topics CoveredAI agents and autonomous reasoningAgent architectures and design patternsMulti-agent collaboration and orchestrationAgent memory and state managementTool calling and Model Context Protocol (MCP)LangGraph, CrewAI, Claude Code, and AWS BedrockProduction deployment with Docker and KubernetesAgent monitoring, observability, and scalabilitySecurity, guardrails, prompt injection defense, and privacyEvaluation, benchmarking, testing, and red teamingHuman-in-the-loop systems and advanced engineering patternsProduction architectures for finance, healthcare, and software engineeringInterview questions and complete implementation projectsWho This Book Is ForAI EngineersMachine Learning EngineersSoftware EngineersGenAI DevelopersSolution ArchitectsMLOps EngineersTechnical LeadsResearchers and graduate studentsWhether you are building autonomous AI applications, designing enterprise agent platforms, preparing for technical interviews, or expanding your expertise in modern AI engineering, this book provides a structured reference that bridges foundational concepts with production-ready implementation.Designed as a long-term technical companion, Agentic AI combines engineering principles, practical examples, architectural guidance, and real-world deployment practices into a single reference for professionals building the next generation of intelligent systems.", "item_img_path" : "https://covers2.booksamillion.com/covers/bam/9/79/818/743/9798187434213_b.jpg", "price_data" : { "retail_price" : "40.00", "online_price" : "40.00", "our_price" : "40.00", "club_price" : "40.00", "savings_pct" : "0", "savings_amt" : "0.00", "club_savings_pct" : "0", "club_savings_amt" : "0.00", "discount_pct" : "10", "store_price" : "" } }
Agentic AI Technical Reference Vol 1|Rashmi Patel

Agentic AI Technical Reference Vol 1

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Overview

Build production-ready AI agents with confidence.

Agentic AI is transforming how intelligent software is designed. Modern AI systems no longer generate text alone-they reason, plan, use tools, maintain memory, collaborate with other agents, recover from failures, and execute complex workflows with minimal human intervention.

This technical reference explains how these systems are designed, implemented, tested, secured, and deployed in real-world production environments.

Rather than focusing on isolated concepts, this book connects the complete Agentic AI ecosystem-from autonomous reasoning and multi-agent orchestration to deployment infrastructure, evaluation frameworks, security controls, and domain-specific applications.

Inside this reference you will learn how to design intelligent systems using modern frameworks including LangGraph, CrewAI, Model Context Protocol (MCP), Claude Code, AWS Bedrock, Docker, Kubernetes, and other production technologies. Every major topic is supported with architecture diagrams, implementation guidance, engineering practices, and practical Python examples.

Topics Covered
  • AI agents and autonomous reasoning
  • Agent architectures and design patterns
  • Multi-agent collaboration and orchestration
  • Agent memory and state management
  • Tool calling and Model Context Protocol (MCP)
  • LangGraph, CrewAI, Claude Code, and AWS Bedrock
  • Production deployment with Docker and Kubernetes
  • Agent monitoring, observability, and scalability
  • Security, guardrails, prompt injection defense, and privacy
  • Evaluation, benchmarking, testing, and red teaming
  • Human-in-the-loop systems and advanced engineering patterns
  • Production architectures for finance, healthcare, and software engineering
  • Interview questions and complete implementation projects
Who This Book Is For
  • AI Engineers
  • Machine Learning Engineers
  • Software Engineers
  • GenAI Developers
  • Solution Architects
  • MLOps Engineers
  • Technical Leads
  • Researchers and graduate students

Whether you are building autonomous AI applications, designing enterprise agent platforms, preparing for technical interviews, or expanding your expertise in modern AI engineering, this book provides a structured reference that bridges foundational concepts with production-ready implementation.

Designed as a long-term technical companion, Agentic AI combines engineering principles, practical examples, architectural guidance, and real-world deployment practices into a single reference for professionals building the next generation of intelligent systems.

This item is Non-Returnable

Details

  • ISBN-13: 9798187434213
  • ISBN-10: 9798187434213
  • Publisher: Independently Published
  • Publish Date: July 2026
  • Dimensions: 9 x 6 x 1.57 inches
  • Shipping Weight: 2.29 pounds
  • Page Count: 790

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