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  • Data Product Management in the AI Age: Design and Manage Your Data Strategy to Get Ahead

    Data Product Management in the AI Age by Milhomem, Jessika;

    Design and Manage Your Data Strategy to Get Ahead

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      • Publisher's listprice EUR 48.14
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        20 319 Ft (19 352 Ft + 5% VAT)
      • Discount 12% (cc. 2 438 Ft off)
      • Discounted price 17 881 Ft (17 030 Ft + 5% VAT)

    20 319 Ft

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    Why don't you give exact delivery time?

    Delivery time is estimated on our previous experiences. We give estimations only, because we order from outside Hungary, and the delivery time mainly depends on how quickly the publisher supplies the book. Faster or slower deliveries both happen, but we do our best to supply as quickly as possible.

    Product details:

    • Edition number First Edition
    • Publisher Apress
    • Date of Publication 7 September 2025
    • Number of Volumes 1 pieces, Book

    • ISBN 9798868813146
    • Binding Paperback
    • No. of pages375 pages
    • Size 235x155 mm
    • Language English
    • Illustrations XXIII, 375 p. 42 illus., 39 illus. in color. Illustrations, black & white
    • 700

    Categories

    Long description:

    "

    An outstanding companion for any data professional seeking to deepen their expertise and grow in the field of Data Product Management.” (Eduardo Juremeira, Data Engineering Manager, Adyen)

    This book is a valuable resource for data professionals, offering clear concepts and practical tools.” (Luis Oliveira, Analytics Engineering Tech Manager, Nubank)

    A practical guide to mastering data product management—bridging strategy, architecture, and execution for the AI era.

    We have firmly entered the age of artificial intelligence (AI). Data, the backbone of this technology, is more crucial than ever. If the algorithm is the brain, data is the content that feeds it. This book argues that to succeed in this era, organizations should adopt a holistic approach to data—one that uses product management principles to inform how data is sourced, designed, managed, maintained, optimized, and leveraged.

    This book is divided into two sections, moving from fundamentals to practical applications. In the first part, you’ll learn about the concepts that underlie product theory, the data architecture journey, and the essential knowledge needed to manage data products. The second part focuses on putting everything into practice, with particular attention to designing solutions, ongoing maintenance, and optimization.

    Additionally, the book introduces the Golden Data Platform and the Data Product Management Canvas, important tools and frameworks coined by author Jessika Milhomem. These resources will help you begin transforming your organization’s data strategy, empowering you to stay ahead of the competition and thrive in the AI age.

    What You Will Learn

    • Explore the evolution of data architecture and strategies

    • Understand the fundamentals of data product management

    • Differentiate between Data Product and Data as a Product

    • Know what the Golden Data Platform is and how to use it

    • Utilize the Data Product Management Canvas effectively

    • Reorient your data strategy with product management principles

    • Examine the concepts of products and data architecture evolution in relation to leadership

    • Evaluate how to solve data architecture without bias by technology

    • Design and implement Data as a Product and Data Products through a project

    • Maintain and enhance Data Products once launched

    Who This Book is for

    Data leaders and managers responsible for designing and delivering data products, as well as product managers who want to collaborate more effectively with data teams. Analytics engineers, data engineers, data scientists, and machine learning engineers will find practical guidance for building impactful data solutions. Developers and data professionals aiming to move into leadership or product roles will also find valuable insights throughout.

    "

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    Table of Contents:

    Part I: Fundamentals for Data Product Management.- Chapter 1: Data Product Management Introduction.- Chapter 2: Data Analytical Architecture - Traditional Architecture.- Chapter 3 : Data Analytical Architecture - Big Data Architecture.- Chapter 4: Consolidating the Analytics Journey Knowledge.- Part II: Data Product Management in Practice.- Chapter 5: Golden Data Platform to Manage Data as a Product.- Chapter 6: Data Product Management.- Chapter 7: Designing the Product of Data - Understanding Phase.- Chapter 8: Designing the Product of Data - Exploring Phase.- Chapter 9: Designing the Data Product - Materializing Phase.- Chapter 10: Ownership process - Recurrent Cycle - Ongoing.

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