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AI Systems Performance Engineering (Optimizing Model Training and Inference Workloads with GPUs, CUDA, and PyTorch)

List Price: $99.99
SKU:
9798341627789
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  • Product Details

    Author:
    Chris Fregly
    Format:
    Paperback
    Pages:
    1060
    Publisher:
    O'Reilly Media (December 16, 2025)
    Imprint:
    O'Reilly Media
    Language:
    English
    ISBN-13:
    9798341627789
    Weight:
    58.24oz
    Dimensions:
    7" x 9.19"
    File:
    TWO RIVERS-PERSEUS-Metadata_Only_Perseus_Distribution_Customer_Group_Metadata_20260813163232-20260813.xml
    Folder:
    TWO RIVERS
    List Price:
    $99.99
    Country of Origin:
    United States
    Case Pack:
    4
    As low as:
    $85.99
    Publisher Identifier:
    P-PER
    Discount Code:
    C
    Pub Discount:
    60
  • Overview

    Elevate your AI system performance capabilities with this definitive guide to maximizing efficiency across every layer of your AI infrastructure. In today's era of ever-growing generative models, AI Systems Performance Engineering provides engineers, researchers, and developers with a hands-on set of actionable optimization strategies. Learn to co-optimize hardware, software, and algorithms to build resilient, scalable, and cost-effective AI systems that excel in both training and inference. Authored by Chris Fregly, a performance-focused engineering and product leader, this resource transforms complex AI systems into streamlined, high-impact AI solutions.

    Inside, you'll discover step-by-step methodologies for fine-tuning GPU CUDA kernels, PyTorch-based algorithms, and multinode training and inference systems. You'll also master the art of scaling GPU clusters for high performance, distributed model training jobs, and inference servers. The book ends with a 175+-item checklist of proven, ready-to-use optimizations.

    • Codesign and optimize hardware, software, and algorithms to achieve maximum throughput and cost savings
    • Implement cutting-edge inference strategies that reduce latency and boost throughput in real-world settings
    • Utilize industry-leading scalability tools and frameworks
    • Profile, diagnose, and eliminate performance bottlenecks across complex AI pipelines
    • Integrate full stack optimization techniques for robust, reliable AI system performance