Agile Machine Learning
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74,99 USD
Typowa cena68,24 PLN
Najniższa (90 dni)51,99 PLN
Liczba ofert6
Ostatnia aktualizacja1 tydzień temu
Historia ceny (90 dni)
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2026-08-08
2026-08-15
| Zaktualizowano | Cena |
|---|---|
| 2026-08-08 | 59,99 |
| 2026-08-15 | 51,99 |
| Sprzedawca | Cena produktu | Dostawa | Razem | Dostępność | Aktualizacja | |
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| SP SpringerNatureLink Shop INT | 74,99 USD | 0 zł | 74,99 USD | Dostępny | 4 dni temu | Zobacz ofertę |
| SP SpringerNatureLink Shop INT | 74,99 USD | 19,00 USD | 93,99 USD | Dostępny | 4 dni temu | Zobacz ofertę |
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| SP SpringerNatureLink Shop INT | 64,99 GBP | 29,00 GBP | 93,99 GBP | Dostępny | 4 dni temu | Zobacz ofertę |
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Build resilient applied machine learning teams that deliver better data products through adapting the guiding principles of the Agile Manifesto. Bringing together talented people to create a great applied machine learning team is no small feat. With developers and data scientists both contributing expertise in their respective fields, communication alone can be a challenge. Agile Machine Learning teaches you how to deliver superior data products through agile processes and to learn, by example, how to organize and manage a fast-paced team challenged with solving novel data problems at scale, in a production environment. The authors’ approach models the ground-breaking engineering principles described in the Agile Manifesto. The book provides further context, and contrasts the original principles with the requirements of systems that deliver a data product. What You'll Learn Effectively run a data engineeringteam that is metrics-focused, experiment-focused, and data-focused Make sound implementation and model exploration decisions based on the data and the metrics Know the importance of data wallowing: analyzing data in real time in a group setting Recognize the value of always being able to measure your current state objectively Understand data literacy, a key attribute of a reliable data engineer, from definitions to expectations Who This Book Is For Anyone who manages a machine learning team, or is responsible for creating production-ready inference components. Anyone responsible for data project workflow of sampling data; labeling, training, testing, improving, and maintaining models; and system and data metrics will also find this book useful. Readers should be familiar with software engineering and understand the basics of machine learning and working with data.