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Research Scientist, LLM Evaluation – Post-Training

Work from home Full-time role Hiring

Job Description:

  • Define and execute a rigorous research agenda focused on LLM evaluation and post-training, with emphasis on evaluation-driven model improvement
  • Design experiments to study how evaluation methodologies impact fine-tuning and post-training outcomes
  • Develop and validate comprehensive evaluation frameworks for LLM and multimodal systems
  • Lead research on frontier evaluation domains including long-context, cross-modal, and dynamic multi-turn evaluations
  • Analyze model behavior and failure patterns; generate actionable recommendations for model improvement
  • Partner with Language Data Scientists to integrate human-in-the-loop and synthetic data/evaluation strategies

Requirements:

  • MS or PhD in Computer Science, Machine Learning, Statistics, Applied Mathematics, AI, or a related quantitative field (PhD strongly preferred)
  • 5+ years of relevant experience in applied ML research or research science, with substantial work in LLMs or foundation models (graduate research counts)
  • Demonstrated experience with LLM evaluation, benchmarking, alignment, post-training, or model quality research
  • Strong foundation in experimental design, statistical analysis, and scientific reasoning for ML systems
  • Strong Python coding skills for research experimentation, data processing, evaluation pipelines, statistical analysis, and visualization
  • Hands-on experience with modern ML frameworks (PyTorch, Hugging Face, JAX/TensorFlow)

Benefits:

  • Remote work options
  • Professional development opportunities

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