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Simular
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PhD Research Intern

Brief overview

Palo Alto +1In-person
PhDOr in progress
1 H-1B approvalsDept. of Labor
Reinforcement LearningBehavioral CloningRAG-based domain knowledgeMultimodal GroundingVision-only modelsTree SearchReward ModelingJudge ModelingError AnalysisHuman EvaluationUser Intent UnderstandingPreference LearningPythonPyTorchJAXExperimentationBenchmarking

About the company

Simular logo
Simularsimular.ai

The Autonomous Computer Company

Visa sponsorship history

2 years sponsoring, last filed FY2025

Data powered by U.S. Department of Labor. This does not guarantee sponsorship for this specific role.
1H-1B approved
50%approval rate
H-1B Petition ApprovalsVisas USCIS actually granted: the strongest sign the company sponsors.
20251

Job description

Where multiple locations are listed for this role, the position may be based in any of those locations, with priority determined according to the order of listing.

What you’ll do

As a PhD intern, you will:

  • Collaborate with research scientists to advance methods in:

    • Planning and RL for computer use (e.g. behavioral cloning, RL on model weights, RAG-based domain knowledge)

    • Multimodal grounding (e.g. vision-only models, tree search, hybrid methods with large models)

    • Reward/judge modeling (e.g. error analysis, human evaluation, training judge models)

    • User intent understanding (e.g. modeling vague queries, preference learning)

  • Contribute to building datasets, running experiments, and benchmarking results

  • Explore novel approaches and help derisk Simular’s long-term technical roadmap

  • Document and communicate findings through internal reports or academic-style writing

You might be a fit if

  • Currently pursuing a PhD in Computer Science, Machine Learning, or related field

  • Research background in at least one of: Reinforcement learning, Large language/vision-language models, Computer vision and multimodal perception, Representation learning

  • Experience conducting experiments and publishing or preparing papers in top-tier conferences (NeurIPS, ICLR, ICML, CVPR, ACL, etc.)

  • Strong coding and prototyping skills in Python and ML frameworks (PyTorch/JAX)

  • Curiosity, initiative, and interest in bridging fundamental research with applied AI

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