Cover Image for From Infrastructure to Application: Lessons in Building Scalable ML Systems
Cover Image for From Infrastructure to Application: Lessons in Building Scalable ML Systems
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From Infrastructure to Application: Lessons in Building Scalable ML Systems

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About Event

Join Hugo Bowne-Anderson and Ferras Hamad (Machine Learning Leader at DoorDash, formerly at Netflix, Meta, and Uber) for a fireside chat exploring the evolving landscape of machine learning and AI systems. Drawing from Ferras’s experience at some of the most innovative tech companies, this conversation will dive into the challenges and opportunities of building and scaling ML systems that bridge infrastructure and application layers.


Key Topics of Discussion

  • From Infrastructure to Business Value: Insights into how companies like Netflix, Meta, Uber, and DoorDash approach the ML lifecycle, from infrastructure design to application-level outcomes that drive business impact.

  • The Convergence of ML Tools: A look at the trend of ML platforms converging to support both advanced users and non-specialists, addressing diverse personas and use cases.

  • LLMs and In-Context Learning: How the rise of large language models is reshaping traditional ML systems, from tooling requirements to integration into production environments.

  • Team Collaboration in ML Development: The importance of cross-functional relationships between data scientists, engineers, and platform teams to foster innovation and efficiency.

  • Skill Sets for the Future: How the blending of roles like ML engineers, data scientists, and software engineers is creating demand for “full-stack” ML professionals.

  • Operationalizing ML Across Industries: Lessons on scaling ML operations in sectors from streaming to delivery, with practical advice for companies at every stage of their data journey.


This session is ideal for software engineers, ML practitioners, and technical leaders seeking insights into the rapidly evolving ML and AI landscape. Whether you're tackling infrastructure challenges, deploying models at scale, or just starting with ML, you'll leave with valuable takeaways to guide your work.

Mark your calendars for January 16th and join us live!

Avatar for Outerbounds
Presented by
Outerbounds
9 Going