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Mu-Hang Tian

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#artificial intelligence Preprint Sep 2026

Reward-rate Policy Gradient for Efficient Machine Learning Engineering Agents

Traditional reinforcement learning (RL) techniques focus on maximizing expected cumulative reward, where each action assumes to take a constant unit of time. However, this assumption does not hold for agentic RL tasks such as machine learning engineering (MLE) agents, where actions involve data loading, feature enginee...

Mu-Hang Tian, Sherry Yang · 0 citations

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