1 day ago

Member of Technical Staff, Research Lab

Micro1

Hybrid
Full Time
$180,000
Hybrid

Job Overview

Job TitleMember of Technical Staff, Research Lab
Job TypeFull Time
CategoryCommerce
Experience5 Years
DegreeMaster
Offered Salary$180,000
LocationHybrid

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Job Description

About Us

micro1 builds the human data and evaluation infrastructure that powers modern AI systems. Our platform is used by frontier AI labs and Fortune 10 companies to source, assess, and deploy elite human expertise directly into model training, evaluation, and feedback loops.

We combine applied AI, large-scale human data, and rigorous evaluation frameworks to improve model performance in production. From our AI recruiter and intelligence platform to internal data quality and research tooling, micro1 turns expert human judgment into high-signal datasets, measurable outcomes, and continuously improving AI systems.

The Role

We’re hiring a Member of Technical Staff, Research Lab to operate as a technical owner inside our Research Labs. This is a hands-on role at the boundary of research, data design, and real-world deployment. You’ll be responsible for ensuring that experimental work produces clean, defensible research signal and that this signal translates into customer-relevant outcomes.

What You’ll Do

  • Own research initiatives end-to-end: problem framing, data design, quality calibration, and signal validation.
  • Design ML-oriented data systems, including task definitions, annotation schemas, rubrics, incentives, and pipelines optimized for downstream model performance.
  • Work directly with domain experts and operations teams to calibrate early quality and continuously raise the signal bar.
  • Convert operational failures, ambiguity, and edge cases into new research directions and data categories.
  • Act as a quality gate: block claims, pause work, or force scope changes when signal strength or data integrity is insufficient.
  • Partner with go-to-market and client-facing teams to translate research progress into clear, credible narratives grounded in evidence.
  • Identify data gaps and recommend where to invest, iterate, or stop based on learnings and commercial relevance.

What We’re Looking For

  • Strong judgment around research signal quality and when work is (or is not) ready to be externalized.
  • Experience designing ML-oriented datasets, including annotation frameworks and QA processes.
  • Ability to translate messy operational reality into structured research opportunities.
  • Comfort operating in ambiguity, with a bias toward ownership and decisive action.
  • Clear written and verbal communication, especially when explaining tradeoffs, limitations, and signal strength to technical and non-technical stakeholders.
  • Proven ability to work directly with experts, especially during project kickoff, calibration, and iteration.

Nice to Have

  • Experience with reinforcement learning environments, simulators, or feedback-driven training setups.
  • Prior work embedded within an R&D or applied research lab shipping customer-facing outputs.
  • Ownership of research efforts with direct sales, client, or deployment impact.
  • Familiarity with expert incentive design and engagement in high-stakes technical projects.

Key skills/competency

  • ML-oriented Data Design
  • Research Signal Quality
  • Data Integrity
  • AI Systems
  • Evaluation Frameworks
  • Domain Expertise Collaboration
  • Data Pipelines Optimization
  • Problem Framing
  • Stakeholder Communication
  • Reinforcement Learning (Nice-to-have)

Tags:

Member of Technical Staff
research design
data engineering
quality assurance
ML data
model evaluation
stakeholder management
problem solving
operational translation
signal validation
project ownership
AI
machine learning
data systems
data pipelines
annotation frameworks
reinforcement learning
experimentation
production AI
model training
data quality tools

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How to Get Hired at Micro1

  • Research micro1's mission: Study their vision for human data and evaluation infrastructure in AI.
  • Tailor your resume: Highlight experience in ML data design, research, and quality assurance for AI systems.
  • Showcase research impact: Demonstrate how your experimental work translates into real-world, customer-relevant outcomes.
  • Prepare for technical deep-dives: Be ready to discuss data integrity, signal validation, and ML-oriented data systems.
  • Articulate problem-solving: Share examples of translating operational ambiguity into structured research opportunities and decisive action.

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