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{ "item_title" : "AI-Driven Inventory Management", "item_author" : [" Harrington Kensington "], "item_description" : "Inventory is one of the largest investments any business makes-and one of the easiest places to lose money through poor forecasting, excess stock, stockouts, inefficient replenishment, and disconnected decision-making. As supply chains become more complex and customer expectations continue to rise, traditional inventory methods are no longer enough.AI-Driven Inventory Management is a practical, hands-on guide that shows you how artificial intelligence is transforming modern inventory operations. Rather than focusing on theory alone, this book explains how today's AI technologies can be applied to real inventory challenges-from demand forecasting and automated replenishment to warehouse optimization, dynamic pricing, returns management, production deployment, governance, and continuous model monitoring.Whether you're beginning your AI journey or modernizing an existing inventory operation, this book provides the knowledge and practical skills needed to build intelligent, data-driven inventory systems that deliver measurable business results.Inside this book, you'll learn how to: Build accurate AI-powered demand forecasting models using modern machine learning techniques.Reduce excess inventory while minimizing costly stockouts.Automate replenishment decisions and purchase order generation.Optimize inventory allocation across multiple warehouses, stores, and fulfillment centers.Improve pricing strategies and markdown optimization using AI.Design scalable inventory data pipelines for enterprise environments.Deploy production-ready AI inventory systems using modern cloud architectures.Monitor model performance, detect drift, and continuously improve forecasting accuracy.Build trustworthy, explainable, and compliant AI systems for real-world business use.Develop a practical roadmap for implementing AI across your inventory organization.Unlike books that discuss artificial intelligence only at a high level, this guide combines business strategy with technical implementation. Throughout the book you'll find detailed explanations, real-world case studies, practical Python examples, implementation guidance, architectural discussions, and production best practices that bridge the gap between data science and day-to-day inventory management.Who This Book Is ForInventory ManagersSupply Chain ProfessionalsDemand Planning AnalystsWarehouse and Distribution ManagersProcurement SpecialistsOperations ManagersManufacturing ProfessionalsRetail and E-commerce LeadersERP and WMS ConsultantsBusiness AnalystsData Scientists entering supply chain analyticsAI and Machine Learning Engineers working with operational systemsMBA students and advanced learners studying supply chain management and business analyticsThis book assumes no prior expertise in advanced artificial intelligence. Business concepts are explained clearly, while technical topics gradually progress into practical implementations that readers can apply immediately. Experienced practitioners will also benefit from the production-focused discussions on deployment, governance, monitoring, and enterprise-scale AI architecture.Artificial intelligence is changing the way organizations forecast demand, manage inventory, and optimize supply chains. Companies that adopt these capabilities effectively can improve service levels, reduce working capital, respond faster to changing market conditions, and build more resilient operations.If you're ready to move beyond spreadsheets and traditional inventory planning-and start building intelligent inventory systems that create measurable business value-AI-Driven Inventory Management will become an indispensable resource for your professional library.", "item_img_path" : "https://covers2.booksamillion.com/covers/bam/9/79/819/235/9798192358177_b.jpg", "price_data" : { "retail_price" : "30.00", "online_price" : "30.00", "our_price" : "30.00", "club_price" : "30.00", "savings_pct" : "0", "savings_amt" : "0.00", "club_savings_pct" : "0", "club_savings_amt" : "0.00", "discount_pct" : "10", "store_price" : "" } }
AI-Driven Inventory Management|Harrington Kensington

AI-Driven Inventory Management : Build Efficient Inventory Systems, Reduce Costs, Improve Stock Accuracy, and Optimize Supply Chain Performance

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Overview

Inventory is one of the largest investments any business makes-and one of the easiest places to lose money through poor forecasting, excess stock, stockouts, inefficient replenishment, and disconnected decision-making. As supply chains become more complex and customer expectations continue to rise, traditional inventory methods are no longer enough.

AI-Driven Inventory Management is a practical, hands-on guide that shows you how artificial intelligence is transforming modern inventory operations. Rather than focusing on theory alone, this book explains how today's AI technologies can be applied to real inventory challenges-from demand forecasting and automated replenishment to warehouse optimization, dynamic pricing, returns management, production deployment, governance, and continuous model monitoring.

Whether you're beginning your AI journey or modernizing an existing inventory operation, this book provides the knowledge and practical skills needed to build intelligent, data-driven inventory systems that deliver measurable business results.

Inside this book, you'll learn how to:
  • Build accurate AI-powered demand forecasting models using modern machine learning techniques.
  • Reduce excess inventory while minimizing costly stockouts.
  • Automate replenishment decisions and purchase order generation.
  • Optimize inventory allocation across multiple warehouses, stores, and fulfillment centers.
  • Improve pricing strategies and markdown optimization using AI.
  • Design scalable inventory data pipelines for enterprise environments.
  • Deploy production-ready AI inventory systems using modern cloud architectures.
  • Monitor model performance, detect drift, and continuously improve forecasting accuracy.
  • Build trustworthy, explainable, and compliant AI systems for real-world business use.
  • Develop a practical roadmap for implementing AI across your inventory organization.

Unlike books that discuss artificial intelligence only at a high level, this guide combines business strategy with technical implementation. Throughout the book you'll find detailed explanations, real-world case studies, practical Python examples, implementation guidance, architectural discussions, and production best practices that bridge the gap between data science and day-to-day inventory management.

Who This Book Is For
  • Inventory Managers
  • Supply Chain Professionals
  • Demand Planning Analysts
  • Warehouse and Distribution Managers
  • Procurement Specialists
  • Operations Managers
  • Manufacturing Professionals
  • Retail and E-commerce Leaders
  • ERP and WMS Consultants
  • Business Analysts
  • Data Scientists entering supply chain analytics
  • AI and Machine Learning Engineers working with operational systems
  • MBA students and advanced learners studying supply chain management and business analytics

This book assumes no prior expertise in advanced artificial intelligence. Business concepts are explained clearly, while technical topics gradually progress into practical implementations that readers can apply immediately. Experienced practitioners will also benefit from the production-focused discussions on deployment, governance, monitoring, and enterprise-scale AI architecture.

Artificial intelligence is changing the way organizations forecast demand, manage inventory, and optimize supply chains. Companies that adopt these capabilities effectively can improve service levels, reduce working capital, respond faster to changing market conditions, and build more resilient operations.

If you're ready to move beyond spreadsheets and traditional inventory planning-and start building intelligent inventory systems that create measurable business value-AI-Driven Inventory Management will become an indispensable resource for your professional library.

This item is Non-Returnable

Details

  • ISBN-13: 9798192358177
  • ISBN-10: 9798192358177
  • Publisher: Independently Published
  • Publish Date: August 2026
  • Dimensions: 10 x 7 x 0.59 inches
  • Shipping Weight: 1.08 pounds
  • Page Count: 280

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