Isbn: 9781617297762 - mlops engineering at scale: deploying pytorch models on aws (18 resultados)

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  • Idioma: Inglés

    Editorial: Manning (edition ), 2022

    1617297763 / 9781617297762

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    Paperback. Condición: Very Good. It's a well-cared-for item that has seen limited use. The item may show minor signs of wear. All the text is legible, with all pages included. It may have slight markings and/or highlighting.

  • Idioma: Inglés

    Editorial: Manning, 2022

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    Librería: ZBK Books, Carlstadt, NJ, Estados Unidos de AmericaZBK Books

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    Condición: very_good. Fast & Free Shipping â" Very Good condition book with a firm cover and clean pages. Shows normal use and some light wear or limited notes markings. A solid, nice copy to enjoy.

  • Idioma: Inglés

    Editorial: Manning, 2022

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    Librería: HPB-Red, Dallas, TX, Estados Unidos de AmericaHPB-Red

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    paperback. Condición: Good. Connecting readers with great books since 1972! Used textbooks may not include companion materials such as access codes, etc. May have some wear or writing/highlighting. We ship orders daily and Customer Service is our top priority.

  • Idioma: Inglés

    Editorial: Manning, 2022

    1617297763 / 9781617297762

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    Librería: Goodbooks Company, Springdale, AR, Estados Unidos de AmericaGoodbooks Company

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    Condición: acceptable. This book is in acceptable condition and may have highlighting and or writing throughout. The actual cover image may not match the stock photo, dust jacket may be damaged or missing. Book may show internal and or external wear on spine or cover and may be slightly skewed or have creased pages. This is a used book so codes may be invalid or accompanying media may be missing. May be an Ex library book with stickers and stamps.…

  • Idioma: Inglés

    Editorial: Manning, 2022

    1617297763 / 9781617297762

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    Librería: Bookmans, tucson, AZ, Estados Unidos de AmericaBookmans

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    paperback. Condición: Good. . Satisfaction 100% guaranteed.

  • Idioma: Inglés

    Editorial: Manning Publications, US, 2022

    1617297763 / 9781617297762

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    Librería: Rarewaves USA, HEBRON, KY, Estados Unidos de AmericaRarewaves USA

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    EUR 45,82

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    Cantidad disponible: 10 disponibles

    Paperback. Condición: New. Deploying a machine learning model into a fully realized production system usually requires painstaking work by an operations team creating and managing custom servers.   Cloud Native Machine Learning  helps you bridge that gap by using the pre-built services provided by cloud platforms like Azure and AWS to assemble your ML system's infrastructure. Following a real-world use case for calculating taxi fares, you'll learn how to get a serverless ML pipeline up and running using AWS services. Clear and detailed tutorials show you how to develop reliable, flexible, and scalable machine learning systems without time-consuming management tasks or the costly overheads of physical hardware. about the technologyYour new machine learning model is ready to put into production, and suddenly all your time is taken up by setting up your server infrastructure. Serverless machine learning offers a productivity-boosting alternative. It eliminates the time-consuming operations tasks from your machine learning lifecycle, letting out-of-the-box cloud services take over launching, running, and managing your ML systems. With the serverless capabilities of major cloud vendors handling your infrastructure, you're free to focus on tuning and improving your models. about the book Cloud Native Machine Learning  is a guide to bringing your experimental machine learning code to production using serverless capabilities from major cloud providers. You'll start with best practices for your datasets, learning to bring VACUUM data-quality principles to your projects, and ensure that your datasets can be reproducibly sampled. Next, you'll learn to implement machine learning models with PyTorch, discovering how to scale up your models in the cloud and how to use PyTorch Lightning for distributed ML training. Finally, you'll tune and engineer your serverless machine learning pipeline for scalability, elasticity, and ease of monitoring with the built-in notification tools of your cloud platform. When you're done, you'll have the tools to easily bridge the gap between ML models and a fully functioning production system.   what's inside Extracting, transforming, and loading datasetsQuerying datasets with SQLUnderstanding automatic differentiation in PyTorchDeploying trained models and pipelines as a service endpointMonitoring and managing your pipeline's life cycleMeasuring performance improvements about the readerFor data professionals with intermediate Python skills and basic familiarity with machine learning. No cloud experience required. about the author Carl Osipov  has spent over 15 years working on big data processing and machine learning in multi-core, distributed systems, such as service-oriented architecture and cloud computing platforms. While at IBM, Carl helped IBM Software Group to shape its strategy around the use of Docker and other container-based technologies for serverless computing using IBM Cloud and Amazon Web Services.…

  • Idioma: Inglés

    Editorial: Manning, 2022

    1617297763 / 9781617297762

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    Librería: WorldofBooks, Goring-By-Sea, WS, Reino UnidoWorldofBooks

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    Condición: Usado - Bueno

    EUR 55,68

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    Paperback. Condición: Very Good. The book has been read, but is in excellent condition. Pages are intact and not marred by notes or highlighting. The spine remains undamaged.

  • Idioma: Inglés

    Editorial: Manning, 2022

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    Librería: Basi6 International, Irving, TX, Estados Unidos de AmericaBasi6 International

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    EUR 63,23

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    Cantidad disponible: 20 disponibles

    Condición: Brand New. New. US edition. Expediting shipping for all USA and Europe orders excluding PO Box. Excellent Customer Service.

  • Idioma: Inglés

    Editorial: Manning, 2022

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    Librería: Basi6 International, Irving, TX, Estados Unidos de AmericaBasi6 International

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    Condición: Brand New. New. US edition. Expediting shipping for all USA and Europe orders excluding PO Box. Excellent Customer Service.

  • Idioma: Inglés

    Editorial: Manning, 2022

    1617297763 / 9781617297762

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    Librería: Romtrade Corp., STERLING HEIGHTS, MI, Estados Unidos de AmericaRomtrade Corp.

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    Condición: New. This is a Brand-new US Edition. This Item may be shipped from US or any other country as we have multiple locations worldwide.

  • Idioma: Inglés

    Editorial: Manning Publications Company, 2022

    1617297763 / 9781617297762

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    Librería: Books Puddle, Woodside, NY, Estados Unidos de AmericaBooks Puddle

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  • Idioma: Inglés

    Editorial: Manning, 2022

    1617297763 / 9781617297762

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    Librería: SMASS Sellers, IRVING, TX, Estados Unidos de AmericaSMASS Sellers

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    Condición: New. Brand New Original US Edition. Customer service! Satisfaction Guaranteed.

  • Idioma: Inglés

    Editorial: Manning Publications Company, 2022

    1617297763 / 9781617297762

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    Librería: Majestic Books, Hounslow, Reino UnidoMajestic Books

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    Condición: New.

  • Idioma: Inglés

    Editorial: Manning Publications Company, 2022

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    Librería: Biblios, frankfurt am main, HESSE, AlemaniaBiblios

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  • Idioma: Inglés

    Editorial: Manning Pubns Co, 2021

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    Librería: Revaluation Books, Exeter, Reino UnidoRevaluation Books

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    Paperback. Condición: Brand New. 250 pages. 9.25x7.37x0.75 inches. In Stock.

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    Idioma: Inglés

    Editorial: Manning Publications, US, 2022

    1617297763 / 9781617297762

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    Librería: Rarewaves USA United, HEBRON, KY, Estados Unidos de AmericaRarewaves USA United

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    Cantidad disponible: 10 disponibles

    Paperback. Condición: New. Deploying a machine learning model into a fully realized production system usually requires painstaking work by an operations team creating and managing custom servers.   Cloud Native Machine Learning  helps you bridge that gap by using the pre-built services provided by cloud platforms like Azure and AWS to assemble your ML system's infrastructure. Following a real-world use case for calculating taxi fares, you'll learn how to get a serverless ML pipeline up and running using AWS services. Clear and detailed tutorials show you how to develop reliable, flexible, and scalable machine learning systems without time-consuming management tasks or the costly overheads of physical hardware. about the technologyYour new machine learning model is ready to put into production, and suddenly all your time is taken up by setting up your server infrastructure. Serverless machine learning offers a productivity-boosting alternative. It eliminates the time-consuming operations tasks from your machine learning lifecycle, letting out-of-the-box cloud services take over launching, running, and managing your ML systems. With the serverless capabilities of major cloud vendors handling your infrastructure, you're free to focus on tuning and improving your models. about the book Cloud Native Machine Learning  is a guide to bringing your experimental machine learning code to production using serverless capabilities from major cloud providers. You'll start with best practices for your datasets, learning to bring VACUUM data-quality principles to your projects, and ensure that your datasets can be reproducibly sampled. Next, you'll learn to implement machine learning models with PyTorch, discovering how to scale up your models in the cloud and how to use PyTorch Lightning for distributed ML training. Finally, you'll tune and engineer your serverless machine learning pipeline for scalability, elasticity, and ease of monitoring with the built-in notification tools of your cloud platform. When you're done, you'll have the tools to easily bridge the gap between ML models and a fully functioning production system.   what's inside Extracting, transforming, and loading datasetsQuerying datasets with SQLUnderstanding automatic differentiation in PyTorchDeploying trained models and pipelines as a service endpointMonitoring and managing your pipeline's life cycleMeasuring performance improvements about the readerFor data professionals with intermediate Python skills and basic familiarity with machine learning. No cloud experience required. about the author Carl Osipov  has spent over 15 years working on big data processing and machine learning in multi-core, distributed systems, such as service-oriented architecture and cloud computing platforms. While at IBM, Carl helped IBM Software Group to shape its strategy around the use of Docker and other container-based technologies for serverless computing using IBM Cloud and Amazon Web Services.…

  • Editorial: Simon and Schuster

    1617297763 / 9781617297762

    Librería: INDOO, Avenel, NJ, Estados Unidos de AmericaINDOO

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    Condición: As New. Unread copy in mint condition.

  • Editorial: Simon and Schuster

    1617297763 / 9781617297762

    Librería: INDOO, Avenel, NJ, Estados Unidos de AmericaINDOO

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    Condición: New. Brand New.