Head of Central Quality and Project Enablement

HumanSignal

• $140K — $180K *
Business Services
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 6+ years of experience in quality assurance or operations focused on data labeling or ML training data.
  • Proficiency in translating complex specifications into actionable guidelines and training materials.
  • Strong background in applied statistics related to QA, including sampling design and confidence intervals.
  • Hands-on experience configuring workflows in an annotation platform.
  • Familiarity with Claude Code for executing quality analysis.

Responsibilities

  • Create project-ready enablement packages from customer specifications, including guidelines and onboarding materials.
  • Develop qualification tests that ensure annotators comprehend specifications before beginning production work.
  • Conduct pilot rounds to identify and resolve spec ambiguities early in the project.
  • Maintain and update version-controlled guidelines throughout the duration of projects based on evolving requirements.
  • Design and implement the quality plan appropriate for each project's review structure, based on task type and risk.
  • Monitor project quality continuously and perform root-cause analyses for defects, driving corrective actions as needed.
  • Prepare comprehensive quality reports for deliveries that outline methodologies, results, and limitations.

Benefits

  • Flexible work location in San Francisco or Austin, TX.
  • Opportunity to shape project enablement and quality processes.
  • Engagement with cutting-edge data services in the ML field.
  • Growth potential within a high-impact, metrics-driven environment.
Full Job Description
Head of Quality & Project Enablement, Data Services

Location: San Francisco or Austin, TX
Reports to: Head of Data Services
Compensation: $140,000 - $180,000
About the role

Every Data Services engagement succeeds or fails on two things: whether the team doing the work understands the spec, and whether we can prove the output meets it. This role owns both.

As Head of Quality & Project Enablement, you'll take each customer spec and turn it into the materials that get annotators and experts productive. You'll then design the quality pipeline and sampling methodology that verifies the work before it ships. When quality slips, you'll trace it back to its source, whether that's a gap in the spec, the training, or the review process, and fix it.
What you'll own

Project enablement
  • Turn customer spec documents into project-ready enablement packages: annotator guidelines, decision trees, edge-case libraries with worked examples, and onboarding walkthroughs.
  • Build qualification tests and gold-standard sets that confirm annotators understand the spec before they touch production work.
  • Run pilot and calibration rounds at project kickoff to surface spec ambiguities early. Resolve those ambiguities with the customer and delivery lead before scaling up.
  • Maintain versioned guidelines throughout the project. Roll out updates as new edge cases appear, and confirm the workforce has absorbed the changes.

Quality pipeline design
  • Design the quality plan for every project. Choose the review structure (gold tasks, overlap/consensus, multi-stage review, expert adjudication) based on the task type, risk, and budget.
  • Set the sampling methodology. Size samples to hit target confidence levels, stratify by class and difficulty, and adjust review rates for each annotator based on performance.
  • Select the right metrics for each task, such as accuracy against gold, agreement measures like  or , or per-class error rates. Set acceptance thresholds that fit how subjective the task is.
  • Configure these workflows in our labeling platform, and turn what works into reusable quality playbooks by task type.

Delivery quality control
  • Own final quality sign-off. No delivery ships without meeting its agreed acceptance criteria.
  • Monitor quality throughout each project. Catch drift early, run root-cause analysis on defects, and drive corrective action for individuals and for guidelines.
  • Produce a clear quality report for every delivery that shows the methodology, the results, and any known limitations.
What you'll bring
  • 6+ years in quality assurance or quality operations for data labeling, human data, or ML training/evaluation data, including experience leading a quality function or team
  • A proven ability to translate complex or ambiguous specs into guidelines and training that produce consistent results
  • Strong applied statistics for QA: sampling design, confidence intervals, and agreement metrics, plus the ability to explain your choices to a customer
  • Hands-on experience configuring review and QA workflows in an annotation platform
  • Proficiency in Claude Code for quality analysis
  • Crisp written communication. Your guidelines and quality reports are the product.

Nice to have: Experience with LLM, RLHF, or preference-data projects; experience with expert or domain-specialist workforces; a background in instructional design; familiarity with Label Studio; experience with model-assisted QA.
What success looks like
  • 90 days: A standard enablement package and quality plan template is in use on every new project. You own sign-off on all active deliveries.
  • 6 months: Annotators ramp to target accuracy faster, mid-project guideline churn drops, and rework and customer-reported defects are measurably down.
  • 12 months: Quality reports and methodology are a selling point for Data Services, and the playbooks are in place so the function can scale beyond you.

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