60 Episodes

  1. In the age of AI, fundamental value resides in data

    Published: 03/01/2019
  2. Trends in data, machine learning, and AI

    Published: 20/12/2018
  3. Tools for generating deep neural networks with efficient network architectures

    Published: 06/12/2018
  4. Building tools for enterprise data science

    Published: 21/11/2018
  5. Lessons learned while helping enterprises adopt machine learning

    Published: 08/11/2018
  6. Machine learning on encrypted data

    Published: 25/10/2018
  7. How social science research can inform the design of AI systems

    Published: 11/10/2018
  8. Why it’s hard to design fair machine learning models

    Published: 27/09/2018
  9. Using machine learning to improve dialog flow in conversational applications

    Published: 13/09/2018
  10. Building accessible tools for large-scale computation and machine learning

    Published: 30/08/2018
  11. Simplifying machine learning lifecycle management

    Published: 16/08/2018
  12. How privacy-preserving techniques can lead to more robust machine learning models

    Published: 02/08/2018
  13. Specialized hardware for deep learning will unleash innovation

    Published: 19/07/2018
  14. Data regulations and privacy discussions are still in the early stages

    Published: 05/07/2018
  15. Managing risk in machine learning models

    Published: 21/06/2018
  16. The real value of data requires a holistic view of the end-to-end data pipeline

    Published: 07/06/2018
  17. The evolution of data science, data engineering, and AI

    Published: 24/05/2018
  18. Companies in China are moving quickly to embrace AI technologies

    Published: 10/05/2018
  19. Teaching and implementing data science and AI in the enterprise

    Published: 26/04/2018
  20. The importance of transparency and user control in machine learning

    Published: 12/04/2018

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The O'Reilly Data Show Podcast explores the opportunities and techniques driving big data, data science, and AI.

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