Research Engineer

talentpluto

$140K — $250K *
Enterprise Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience in AI/ML or software engineering within AI contexts
  • Proven capability in data ingestion and processing
  • Ability to analyze data quality issues from a foundational level
  • Strong problem-solving skills for ambiguous, open-ended challenges
  • Willingness to work full-time in the San Francisco office
  • Bonus: familiarity with noisy or unstructured data and decision-making regarding automation vs. human review

Responsibilities

  • Identify data quality issues, including inconsistencies and formatting problems
  • Perform initial manual reviews to understand data failure modes
  • Develop automated systems for quality checks using both rule-based and AI techniques
  • Design hybrid systems integrating automation and human review
  • Continuously enhance verification methods as tools and data evolve

Benefits

  • Hybrid work model allowing flexibility between remote and in-office work
  • Equity package alongside competitive salary
  • Opportunity to work on challenging research problems in AI
  • Engagement in a fast-paced and innovative company culture
  • Hands-on experience with cutting-edge AI technology and data systems
Full Job Description
Location: San Francisco, CA

Work Model: Hybrid

Industry: AI training data infrastructure

Compensation: $140K-$250K base, plus equity
The Opportunity

This is the company's top hiring priority and a genuinely hard research problem. Because data flows through a decentralized marketplace, ensuring quality at scale is the single biggest bottleneck to growth. As a Research Engineer, you will build the automated systems that verify and assure data quality so that suppliers consistently deliver excellent data to buyers.

You will start by digging into the data manually to understand failure modes, then design systems to automate quality checks at scale, combining rule-based approaches with AI for fuzzier cases and human-in-the-loop review where it makes sense. This is fundamentally a research role focused on building automated systems, not manual QA.
Responsibilities
  • Identify data quality issues including inconsistencies, formatting problems, and ingestion challenges
  • Perform initial manual data quality review to deeply understand failure modes
  • Build systems to automate quality checks at scale using rule-based and AI-driven approaches
  • Design hybrid systems that balance automation with human-in-the-loop review where appropriate
  • Continuously improve verification methods as the data landscape and AI tooling evolve
Requirements
  • Deeply technical, with a strong learning slope and the ability to ramp quickly in a fast-moving field
  • Background in AI/ML engineering, or software engineering at an AI-focused company with visible data ingestion and processing experience
  • Ability to reason about likely data quality problems from first principles
  • Comfortable owning ambiguous, open-ended problems end to end
  • Comfortable working in person, full-time, in a San Francisco office
  • Bonus: experience working with noisy or unstructured data, or judgment on when to use automation versus human-in-the-loop review

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