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#046 The Great ML Stagnation (Mark Saroufim and Dr. Mathew Salvaris)

Machine Learning Street Talk (MLST)

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Rethinking Machine Learning Research

This chapter critically examines the contemporary landscape of machine learning, focusing on the dominance of transformers and the concept of 'graduate student descent.' It highlights the importance of a foundational understanding over mere publishable results, while addressing challenges such as scaling issues and the complexities of academic pressures. The discussion advocates for a revival of innovation and creativity in the field, emphasizing user-centric design and practical problem-solving over complex mathematics.

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