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Generative AI on Kubernetes (Operationalizing Large Language Models)

List Price: $59.99
SKU:
9781098171926
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  • Product Details

    Author:
    Roland Huß, Daniele Zonca
    Format:
    Paperback
    Pages:
    404
    Publisher:
    O'Reilly Media (April 7, 2026)
    Imprint:
    O'Reilly Media
    Language:
    English
    ISBN-13:
    9781098171926
    ISBN-10:
    1098171926
    Weight:
    22.72oz
    Dimensions:
    7" x 9.19"
    File:
    TWO RIVERS-PERSEUS-Metadata_Only_Perseus_Distribution_Customer_Group_Metadata_20260602163411-20260602.xml
    Folder:
    TWO RIVERS
    List Price:
    $59.99
    Country of Origin:
    United States
    Pub Discount:
    60
    Case Pack:
    10
    As low as:
    $51.59
    Publisher Identifier:
    P-PER
    Discount Code:
    C
  • Overview

    Generative AI is revolutionizing industries, and Kubernetes has fast become the backbone for deploying and managing these resource-intensive workloads. This book serves as a practical, hands-on guide for MLOps engineers, software developers, Kubernetes administrators, and AI professionals ready to combine AI innovation with the power of cloud native infrastructure. Authors Roland Huß and Daniele Zonca provide a clear road map for training, fine-tuning, deploying, and scaling GenAI models on Kubernetes, addressing challenges like resource optimization, automation, and security along the way.

    With actionable insights with real-world examples, readers will learn to tackle the opportunities and complexities of managing GenAI applications in production environments. Whether you're experimenting with large-scale language models or facing the nuances of AI deployment at scale, you'll uncover expertise you need to operationalize this exciting technology effectively.

    • Learn how to deploy LLMs more efficiently with optimized inference runtimes
    • Get hands-on with GPU scheduling, including hardware detection and multinode scaling
    • Monitor and understand LLM-specific metrics like Time to First Token and token throughput
    • Know when to fine-tune a model or when retrieval augmentation is the better choice
    • Discover how to evaluate models with standardized benchmarks before committing GPU resources
    • Learn to run agentic applications with secure tool integration, identity management, and persistent state