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Autor(en): 
  • Mohammad Reza Mahdiani
  • Mastering Machine Learning Architecture and Solutions: From Design to Deployment 
     

    (Buch)
    Dieser Artikel gilt, aufgrund seiner Grösse, beim Versand als 3 Artikel!


    Übersicht

    Auf mobile öffnen
     
    Lieferstatus:   i.d.R. innert 7-14 Tagen versandfertig
    Veröffentlichung:  Mai 2026  
    Genre:  EDV / Informatik 
     
    Artificial Intelligence / Data Pipeline Design / Feature Engineering / hyperparameter optimization / machine learning / Machine Learning Systems / Maschinelles Lernen / Programmier- und Skriptsprachen, allgemein
    ISBN:  9798868825262 
    EAN-Code: 
    9798868825262 
    Verlag:  Springer EN 
    Einband:  Kartoniert  
    Sprache:  English  
    Dimensionen:  H 254 mm / B 178 mm / D  
    Seiten:  382 
    Illustration:  XIX, 382 p. 50 illus., schwarz-weiss Illustrationen 
    Zus. Info:  EUDR exemption - product or manufacturing materials placed on the market prior to 31.12.2025. 
    Bewertung: Titel bewerten / Meinung schreiben
    Inhalt:
    Mastering Machine Learning Architecture and Solutions is a comprehensive guide to designing and deploying end-to-end ML systems. Ideal for data scientists, machine learning engineers, and architects, this book bridges theoretical foundations with practical applications to help you navigate the complexities of modern ML development. The book begins with the exploration of ML architecture, it introduces the core concepts and lifecycle stages necessary for successful implementation. It delves into designing robust data pipelines, emphasizing data cleaning, feature engineering, and scaling techniques to support high-performance ML systems. It further discusses model selection and optimization, covering advanced techniques for hyperparameter tuning and managing imbalanced datasets. Readers are introduced to scalable architectural patterns that ensure adaptability and performance, including modular designs and microservices. Infrastructure considerations, such as leveraging cloud solutions and hardware accelerators, are also examined to optimize costs and resources. It also discusses deployment strategies with detailed guidance on containerization, orchestration, and automation. Post-deployment challenges are addressed through chapters on managing, updating, and monitoring live models. Additional topics include rigorous testing, debugging, and ensuring explainability and fairness in models, critical for building trustworthy systems. The book concludes with insights into future trends and ethical considerations shaping the ML landscape. In the end, this book provides professionals with the tools to build effective and sustainable ML systems, helping them solve modern AI challenges. What you will learn: Gain foundational knowledge of machine learning architecture, lifecycle, and implementation strategies. How to design robust data pipelines with feature engineering and scaling techniques for high-performance systems. Explore scalable ML system designs, including modular architectures, microservices, and cloud infrastructure optimization. Understand deployment, monitoring, and ethical considerations to build trustworthy, adaptable, and cost-efficient ML solutions Who this book is for: Data scientists, machine learning engineers, AI professionals, and technical professionals aiming to enhance their expertise in ML system architecture and deployment.

      



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