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Data Science MBA

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Data Science MBA
Lowest price (incl. delivery)
88,99 USD
Typical price67,97 PLN
Lowest (90 days)58,84 PLN
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Last updated1 săptămână în urmă
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Price history (90 days)
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2026-08-08 2026-08-15
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2026-08-0858,84
2026-08-1558,84
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SP SpringerNatureLink Shop INT 59,99 USD 29,00 USD 88,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 69,99 USD free 69,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 69,99 USD free 69,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 79,99 USD 25,00 USD 104,99 USD Disponibil 6 zile în urmă View offer
SP SpringerNatureLink Shop INT 79,99 USD free 79,99 USD Disponibil 6 zile în urmă View offer
SP Springer Nature Author 79,99 USD free 79,99 USD Disponibil 1 săptămână în urmă View offer
SP SpringerNatureLink Shop INT 76,99 EUR 25,00 EUR 101,99 EUR Disponibil 6 zile în urmă View offer

Prețurile și disponibilitatea se pot modifica. Ultima actualizare: 08.08.2026 12:17.

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This text book focuses on what could be the most important challenge for firms to boost long-term productivity and competitiveness: digital strategy. It seeks to provide readers with a solid knowledge of the most relevant issues and concepts, that will be relevant to MBA students in real-world settings. The book discusses theoretical concepts relating to digital strategy, while also using hands-on data analysis in R software to illustrate some fundamental features and pitfalls of working with real-world data. The book starts by clarifying the meaning of relevant concepts (digitization vs digitalization; Machine learning, Artificial Intelligence), presents three leading models of digital transformation, and explains how digitalization has far-reaching implications for how organizations need to be structured. Then the book discusses the skills of a data scientist, and how digital transformation leads to new concerns surrounding ethics. Other themes include data quality, data pre-processing, data visualization, as well as the distinction between prediction and causal inference. Many of these themes are illustrated using R examples, that familiarize the reader with data analysis, using these hands-on experiences to uniquely illustrate some important themes surrounding statistical analysis, and to let readers see for themselves how some popular statistical and data science techniques actually work.

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