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Optimizing Model Training End-to-End: A Tiny MoE Case Study Lambda

2026/6/1619:52652 次觀看在 YouTube 觀看

[2026 - DAY 3 - MODEL SYSTEMS] Cloud compute is expensive, and wasting runs on the guise of a "just scale will fix any problems" leaves you with less time to fix errors, and less compute to train the model you want. In this talk, I will discuss what are the easy optimizatiosn you might miss (minimizing communications, using the most effective algorithms, ensuring you're getting the most FLOPs possible) at the small scale, before ensuring that when you do scale up nothing is going to waste. In this particular talk, I'll be focusing on what worked at home, that then let me scale it further onto the cloud. SPEAKER: Zach Mueller - Head of Developer Relations, Lambda 👉 Sign up for our "No BS" Newsletter to get the latest technical data & AI content: https://aicouncil.com/newsletter ABOUT AI COUNCIL: AI Council brings together the brightest minds in data to share industry knowledge, technical architectures and best practices in building cutting edge data & AI systems and tools. FIND US: Website: https://aicouncil.com/ LinkedIn: https://www.linkedin.com/company/aicouncilconf/ X: https://x.com/aicouncilconf

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