Data Science, AI, and Machine Learning in Drug Development
Language: English
Published by Taylor and Francis Ltd, GB, 2022
- First Edition
- Hardcover
- New

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The confluence of big data, artificial intelligence (AI), and machine learning (ML) has led to a paradigm shift in how innovative medicines are developed and healthcare delivered. To fully capitalize on these technological advances, it is essential to systematically harness data from diverse sources and leverage digital technologies and advanced analytics to enable data-driven decisions. Data science stands at a unique moment of opportunity to lead such a transformative change.Intended to be a single source of information, Data Science, AI, and Machine Learning in Drug Research and Development covers a wide range of topics on the changing landscape of drug R and D, emerging applications of big data, AI and ML in drug development, and the build of robust data science organizations to drive biopharmaceutical digital transformations.FeaturesProvides a comprehensive review of challenges and opportunities as related to the applications of big data, AI, and ML in the entire spectrum of drug R and DDiscusses regulatory developments in leveraging big data and advanced analytics in drug review and approvalOffers a balanced approach to data science organization buildPresents real-world examples of AI-powered solutions to a host of issues in the lifecycle of drug developmentAffords sufficient context for each problem and provides a detailed description of solutions suitable for practitioners with limited data science expertise.…
Seller Inventory # LU-9780367708078
- Title
- Data Science, AI, and Machine Learning in Drug Development
- Author
- Harry Yang
- Publisher
- Taylor and Francis Ltd, GB
- Publication year
- 2022
- Condition
- New
- Binding
- Hardback
- Language
- English
- ISBN 10
- 0367708078
- ISBN 13
- 9780367708078
- Edition
- 1st.
- Item weight
- 620 grams
- Dimensions
- 15.6 x 2.41 x 23.39 cm
- Series
- Book 138 of 155: Chapman & Hall/CRC Biostatistics
The confluence of big data, artificial intelligence (AI), and machine learning (ML) has led to a paradigm shift in how innovative medicines are developed and healthcare delivered. To fully capitalize on these technological advances, it is essential to systematically harness data from diverse sources and leverage digital technologies and advanced analytics to enable data-driven decisions. Data science stands at a unique moment of opportunity to lead such a transformative change.
Intended to be a single source of information, Data Science, AI, and Machine Learning in Drug Research and Development covers a wide range of topics on the changing landscape of drug R & D, emerging applications of big data, AI and ML in drug development, and the build of robust data science organizations to drive biopharmaceutical digital transformations.
Features
- Provides a comprehensive review of challenges and opportunities as related to the applications of big data, AI, and ML in the entire spectrum of drug R & D
- Discusses regulatory developments in leveraging big data and advanced analytics in drug review and approval
- Offers a balanced approach to data science organization build
- Presents real-world examples of AI-powered solutions to a host of issues in the lifecycle of drug development
- Affords sufficient context for each problem and provides a detailed description of solutions suitable for practitioners with limited data science expertise
"Synopsis" may belong to another edition of this title.
About the Author
Harry Yang, Ph.D., is the Vice President and Head of Biometrics at Fate Therapeutics. He has 27 years of experience across all aspects of drug R & D, from early target discovery, through pre-clinical, clinical, translational science, and CMC programs to regulatory approval and post-approval lifecycle management. He played a pivotal role in the successful submissions of 5 biologics license appllications (BLAs) that ultimately led to marketing approvals of five biological products. He has published 8 statistical and data science books, 28 book chapters, over 100 peer-reviewed articles, and 3 industry white papers on diverse scientific, statistical, and data science subjects. He is a frequent invited speaker at national and international conferences. He has also developed statistical courses and conducted trainings at the United States Food and Drug Administration (FDA) and United States Pharmacopeia (USP).
"About the title" may belong to another edition of this title.
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