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Figure.ai

Project Coordinator, Data Quality

Reposted One Month Ago
Be an Early Applicant
In-Office
San Jose, CA
35-40 Hourly
Mid level
In-Office
San Jose, CA
35-40 Hourly
Mid level
Own end-to-end project lifecycle for data quality: define review guidelines and SOPs, run audits, manage analysts and vendors, translate ML requirements into operational guidance, and lead training, calibration, and performance reviews.
The summary above was generated by AI

Figure is an AI Robotics company developing autonomous general-purpose humanoid robots. The goal of the company is to ship humanoid robots with human level intelligence. Its robots are engineered to perform a variety of tasks in the home and commercial markets. We are based in North San Jose, CA and require 5 days/week in-office collaboration. It’s time to build.

Figure AI is building the data foundation that powers our humanoid robots. The Data Quality team owns the standards, guidelines, and audit infrastructure that ensure our training data meets the bar our AI systems require.

As a Project Coordinator, you'll own a full project lifecycle within Data Quality — from defining review guidelines to running audit cycles to managing the analysts and vendors who execute the work. You'll be the primary point of contact between project-level execution and engineering, translating data quality requirements into guidelines a review team can act on, and feeding audit findings back into how the team works. 

Responsibilities

  • Own review guidelines and acceptance criteria for your project; handle escalated edge cases that fall outside existing guidance.
  • Contribute to golden set construction for your project type.
  • Run project-level audit cycles and feed findings directly back into guideline updates.
  • Coordinate analysts across projects within your scope.
  • Write and maintain project-level SOPs; update them through post-project retros.
  • Manage direct reports where applicable, including structured performance reviews.
  • Design project-specific training materials and calibration exercises.
  • Serve as the primary contact for project-level vendor coordination, including communicating SLA expectations.
  • Translate quality requirements into actionable review guidelines; act as first point of contact for project-level clarifications.

Requirements:

  • 4+ years of experience in data quality, data labeling operations, or content/data review roles, with demonstrated ownership of a project or workstream end-to-end.
  • Experience writing review guidelines, acceptance criteria, or SOPs that other people executed against.
  • Experience running audit or QA cycles and translating findings into process or guideline changes.
  • Comfort working directly with engineering or ML stakeholders to translate technical requirements into operational guidance.
  • Experience managing vendor relationships, including SLA communication.
  • People management experience, or readiness to take on direct reports.

Bonus Qualifications

  • Experience with golden set / ground truth construction.
  • Background in robotics, autonomous systems, LLM or physical AI data.
  • Experience designing training or calibration programs for review teams.

The US base salary range for this full-time position starts at $40/hr.

The pay offered for this position may vary based on several individual factors, including job-related knowledge, skills, and experience. The total compensation package may also include additional components/benefits depending on the specific role. This information will be shared if an employment offer is extended. 

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