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Research Engineer in Automated Machine Learning
Job Description & How to Apply Below
In this role, you'll be at the intersection of research and engineering, pushing the boundaries of post-training on large language models. You will train and evaluate models using proprietary RL environments, architect infrastructure, and implement methodologies for RL agents. Your contributions will have a direct impact on data quality and model capabilities.
Key Responsibilities:
• Train and evaluate models on proprietary RL environments
• Architect and optimize RL training infrastructure
• Design and test training environments and evaluation methodologies
• Profile and optimize training runs for maximum throughput
Requirements:
• Experience with end-to-end LLM post-training pipelines
• Proficiency in Python and PyTorch or JAX
• Familiarity with modern RL training frameworks
• Experience building ML infrastructure at scale
Bring your research and engineering skills to Preference Model and drive innovation in ML.
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