Isbn: 9781617296444 - designing cloud data platforms (13 risultati)

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  • Lingua: Inglese

    Editore: Manning, 2021

    1617296449 / 9781617296444

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  • Lingua: Inglese

    Editore: Manning Publications, 2021

    1617296449 / 9781617296444

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  • Lingua: Inglese

    Editore: Manning, 2021

    1617296449 / 9781617296444

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  • Lingua: Inglese

    Editore: Manning, 2021

    1617296449 / 9781617296444

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    Da: World of Books (was SecondSale), Montgomery, IL, U.S.A.World of Books (was SecondSale)

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  • Lingua: Inglese

    Editore: Manning Publications, 2021

    1617296449 / 9781617296444

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    Da: World of Books Inc, Montgomery, IL, U.S.A.World of Books Inc

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    Paperback. Condizione: Fair. Centralized data warehouses, the long-time defacto standard for housing data for analytics, are rapidly giving way to multi-faceted cloud data platforms. Companies that embrace modern cloud data platforms benefit from an integrated view of their business using all of their data and can take advantage of advanced analytic practices to drive predictions and as yet unimagined data services.   Designing Cloud Data Platforms  is an hands-on guide to envisioning and designing a modern scalable data platform that takes full advantage of the flexibility of the cloud. As you read, you?ll learn the core components of a cloud data platform design, along with the role of key technologies like Spark and Kafka Streams. You?ll also explore setting up processes to manage cloud-based data, keep it secure, and using advanced analytic and BI tools to analyse it. about the technologyAccess to affordable, dependable, serverless cloud services has revolutionized the way organizations can approach data management, and companies both big and small are raring to migrate to the cloud. But without a properly designed data platform, data in the cloud can remain just as siloed and inaccessible as it is today for most organizations.   Designing Cloud Data Platforms  lays out the principles of a well-designed platform that uses the scalable resources of the public cloud to manage all of an organization's data, and present it as useful business insights. about the bookIn   Designing Cloud Data Platforms, you?ll learn how to integrate data from multiple sources into a single, cloud-based, modern data platform. Drawing on their real-world experiences designing cloud data platforms for dozens of organizations, cloud data experts Danil Zburivsky and Lynda Partner take you through a six-layer approach to creating cloud data platforms that maximizes flexibility and manageability and reduces costs. Starting with foundational principles, you?ll learn how to get data into your platform from different databases, files, and APIs, the essential practices for organizing and processing that raw data, and how to best take advantage of the services offered by major cloud vendors. As you progress past the basics you?ll take a deep dive into advanced topics to get the most out of your data platform, including real-time data management, machine learning analytics, schema management, and more.   what's inside The tools of different public cloud for implementing data platformsBest practices for managing structured and unstructured data setsMachine learning tools that can be used on top of the cloudCost optimization techniques about the readerFor data professionals familiar with the basics of cloud computing and distributed data processing systems like Hadoop and Spark. about the authors Danil Zburivsky  has over 10 years experience designing and supporting large-scale data infrastructure for enterprises across the globe.   Lynda Partner  is the VP of Analytics-as-a-Service at Pythian, and has been on the business side of data for over 20 years.

  • Lingua: Inglese

    Editore: Manning, 2021

    1617296449 / 9781617296444

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    Condizione: Like New. paperback. Wrappers are firm, text block clean, without highlights/underlining or markings. Some rubbing/curling to wrappers. Supporting Bay Area Friends of the Library since 2010. Well packaged and promptly shipped.

  • Lingua: Inglese

    Editore: Manning Publications Co. LLC, 2021

    1617296449 / 9781617296444

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    Da: Better World Books, Mishawaka, IN, U.S.A.Better World Books

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    Condizione: Very Good. Pages intact with possible writing/highlighting. Binding strong with minor wear. Dust jackets/supplements may not be included. Stock photo provided. Product includes identifying sticker. Better World Books: Buy Books. Do Good.

  • Lingua: Inglese

    Editore: Simon and Schuster, 2021

    1617296449 / 9781617296444

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  • Lingua: Inglese

    Editore: Simon and Schuster, 2021

    1617296449 / 9781617296444

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  • Lingua: Inglese

    Editore: Manning Publications, US, 2021

    1617296449 / 9781617296444

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    Da: Rarewaves USA, HEBRON, KY, U.S.A.Rarewaves USA

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    Paperback. Condizione: New. Centralized data warehouses, the long-time defacto standard for housing data for analytics, are rapidly giving way to multi-faceted cloud data platforms. Companies that embrace modern cloud data platforms benefit from an integrated view of their business using all of their data and can take advantage of advanced analytic practices to drive predictions and as yet unimagined data services.   Designing Cloud Data Platforms  is an hands-on guide to envisioning and designing a modern scalable data platform that takes full advantage of the flexibility of the cloud. As you read, you'll learn the core components of a cloud data platform design, along with the role of key technologies like Spark and Kafka Streams. You'll also explore setting up processes to manage cloud-based data, keep it secure, and using advanced analytic and BI tools to analyse it. about the technologyAccess to affordable, dependable, serverless cloud services has revolutionized the way organizations can approach data management, and companies both big and small are raring to migrate to the cloud. But without a properly designed data platform, data in the cloud can remain just as siloed and inaccessible as it is today for most organizations.   Designing Cloud Data Platforms  lays out the principles of a well-designed platform that uses the scalable resources of the public cloud to manage all of an organization's data, and present it as useful business insights. about the bookIn   Designing Cloud Data Platforms, you'll learn how to integrate data from multiple sources into a single, cloud-based, modern data platform. Drawing on their real-world experiences designing cloud data platforms for dozens of organizations, cloud data experts Danil Zburivsky and Lynda Partner take you through a six-layer approach to creating cloud data platforms that maximizes flexibility and manageability and reduces costs. Starting with foundational principles, you'll learn how to get data into your platform from different databases, files, and APIs, the essential practices for organizing and processing that raw data, and how to best take advantage of the services offered by major cloud vendors. As you progress past the basics you'll take a deep dive into advanced topics to get the most out of your data platform, including real-time data management, machine learning analytics, schema management, and more.   what's inside The tools of different public cloud for implementing data platformsBest practices for managing structured and unstructured data setsMachine learning tools that can be used on top of the cloudCost optimization techniques about the readerFor data professionals familiar with the basics of cloud computing and distributed data processing systems like Hadoop and Spark. about the authors Danil Zburivsky  has over 10 years experience designing and supporting large-scale data infrastructure for enterprises across the globe.   Lynda Partner  is the VP.

  • Lingua: Inglese

    Editore: Manning, 2021

    1617296449 / 9781617296444

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    Da: GoldBooks, Denver, CO, U.S.A.GoldBooks

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    Paperback. Condizione: new. New Copy. Customer Service Guaranteed.

  • Lingua: Inglese

    Editore: Manning Pubns Co, 2021

    1617296449 / 9781617296444

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    Paperback. Condizione: Brand New. 400 pages. 9.50x7.50x0.75 inches. In Stock.

  • Lingua: Inglese

    Editore: Manning Publications, US, 2021

    1617296449 / 9781617296444

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    Da: Rarewaves USA United, HEBRON, KY, U.S.A.Rarewaves USA United

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    Paperback. Condizione: New. Centralized data warehouses, the long-time defacto standard for housing data for analytics, are rapidly giving way to multi-faceted cloud data platforms. Companies that embrace modern cloud data platforms benefit from an integrated view of their business using all of their data and can take advantage of advanced analytic practices to drive predictions and as yet unimagined data services.   Designing Cloud Data Platforms  is an hands-on guide to envisioning and designing a modern scalable data platform that takes full advantage of the flexibility of the cloud. As you read, you'll learn the core components of a cloud data platform design, along with the role of key technologies like Spark and Kafka Streams. You'll also explore setting up processes to manage cloud-based data, keep it secure, and using advanced analytic and BI tools to analyse it. about the technologyAccess to affordable, dependable, serverless cloud services has revolutionized the way organizations can approach data management, and companies both big and small are raring to migrate to the cloud. But without a properly designed data platform, data in the cloud can remain just as siloed and inaccessible as it is today for most organizations.   Designing Cloud Data Platforms  lays out the principles of a well-designed platform that uses the scalable resources of the public cloud to manage all of an organization's data, and present it as useful business insights. about the bookIn   Designing Cloud Data Platforms, you'll learn how to integrate data from multiple sources into a single, cloud-based, modern data platform. Drawing on their real-world experiences designing cloud data platforms for dozens of organizations, cloud data experts Danil Zburivsky and Lynda Partner take you through a six-layer approach to creating cloud data platforms that maximizes flexibility and manageability and reduces costs. Starting with foundational principles, you'll learn how to get data into your platform from different databases, files, and APIs, the essential practices for organizing and processing that raw data, and how to best take advantage of the services offered by major cloud vendors. As you progress past the basics you'll take a deep dive into advanced topics to get the most out of your data platform, including real-time data management, machine learning analytics, schema management, and more.   what's inside The tools of different public cloud for implementing data platformsBest practices for managing structured and unstructured data setsMachine learning tools that can be used on top of the cloudCost optimization techniques about the readerFor data professionals familiar with the basics of cloud computing and distributed data processing systems like Hadoop and Spark. about the authors Danil Zburivsky  has over 10 years experience designing and supporting large-scale data infrastructure for enterprises across the globe.   Lynda Partner  is the VP.