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Member of Technical Staff, Enterprise AI, Remote- Full-time

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United States
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Remote
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Job Title: Member of Technical Staff, Enterprise AI

Job Type: Full-time

Location: Remote

Required Skills:

  • Research Signal Judgment

  • ML-Oriented Data Design

  • Ops-to-Research Translation

  • Enterprise AI

The Role: As a Member of Technical Staff, you will function as a forward-deployed research partner embedded directly within enterprise AI systems. You will work on live workflows, uncover real-world failure modes, and drive rapid experimental cycles to improve system performance.

What You’ll Do:

  • Embed within enterprise AI workflows as a research collaborator, working alongside domain experts and client teams.

  • Surface, formalize, and prioritize system failure modes in real-world deployments.

  • Design high-signal datasets and evaluation protocols to target identified weaknesses.

  • Run tight experimental loops to validate hypotheses and quantify improvements.

  • Produce clear, decision-oriented analyses of system behavior and performance.

  • Develop and benchmark agentic workflows, focusing on robustness and scalability.

  • Build lightweight tooling to support evaluation, data curation, and rapid iteration.

  • Contribute to internal and external research artifacts, including reports and benchmarks.

Who You Are:

  • Master’s degree in Computer Science, Machine Learning, Artificial Intelligence, or a related technical field.

  • Strong judgment for research signal quality, including data selection and evaluation design.

  • Experience designing datasets and evaluation frameworks for ML systems.

  • Ability to translate ambiguous operational issues into structured research problems.

  • Familiarity with RL environments and/or agentic system evaluation.

  • Clear, concise communicator with a bias toward actionable insight.

  • Proven ability to execute in fast iteration cycles and high-ambiguity settings.

  • Collaborative mindset with experience working across research, product, and domain teams.

Preferred:

  • Strong client-facing experience, particularly in technical or research-driven environments.

  • Experience building internal research or evaluation tooling.

  • Contributions to benchmarks, research publications, or open research initiatives.

  • Exposure to enterprise AI deployments or forward-deployed research models.

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