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Machine Learning Engineer, Marketplace

Mercor

Machine Learning Engineer, Marketplace

Mercor

San Francisco

·

On-site

·

Full-time

·

1w ago

About Mercor

Mercor is defining the future of work. We partner with leading AI labs and enterprises to provide the human intelligence essential to AI development.

Our vast talent network trains frontier AI models in the same way teachers teach students: by sharing knowledge, experience, and context that can't be captured in code alone. Today, more than 30,000 experts in our network collectively earn over $2 million a day.

Mercor is creating a new category of work where expertise powers AI advancement. Achieving this requires an ambitious, fast-paced and deeply committed team. You’ll work alongside researchers, operators, and AI companies at the forefront of shaping the systems that are redefining society.

Mercor is a profitable Series C company valued at $10 billion. We work in-person five days a week in our San Francisco, NYC, or London offices.

About the Role:

As a Machine Learning Engineer on the Marketplace team, you will build the models and decision systems that power Mercor’s hiring engine. This includes search and ranking, candidate-job matching, marketplace recommendations, personalization, and allocation decisions across a rapidly growing talent network.

This is an applied ML role with direct product and revenue impact. You will work on problems shaped by real marketplace constraints: sparse and delayed labels, cold start, noisy feedback, heterogeneous supply and demand, and the need to optimize across speed, quality, and conversion simultaneously.

What You’ll Build

  • Ranking and matching systems that determine which candidates and opportunities are surfaced
  • Models for recommendation, personalization, and marketplace optimization
  • Retrieval, scoring, and decision pipelines operating at global scale
  • Feedback loops that learn from downstream hiring outcomes, not just top-of-funnel engagement
  • Real-time and batch inference systems embedded in product-critical workflows

Example Problems

  • Improve candidate-job matching using embeddings, structured attributes, and behavioral signals
  • Optimize ranking toward long-term hiring outcomes under delayed and incomplete labels
  • Design models that balance marketplace objectives such as fill rate, quality, speed, and conversion
  • Build systems for candidate allocation, opportunity routing, and liquidity optimization
  • Develop evaluation and experimentation frameworks that connect model performance to business results

What We’re Looking For

  • Strong track record of shipping ML systems into production
  • Experience with ranking, recommendation, search, matching, or marketplace problems
  • Good judgment on model design, objective functions, evaluation, and tradeoffs
  • Comfort working across the full applied ML stack: data, features, training, inference, and iteration
  • Strong engineering fundamentals and a bias toward simple, robust systems

Why This Role

This role sits on a core decision layer of the product. Your work will directly shape how talent is discovered, matched, and hired, and will influence fundamental marketplace outcomes across quality, speed, and revenue.

Tech Stack

Python, Go, embeddings, fine-tuning, RAG, Kafka, Postgres, Redis, Elasticsearch, Kubernetes, Terraform

Benefits

  • Generous equity grant vested over 4 years

  • A $20K relocation bonus (if moving to the Bay Area)

  • A $10K housing bonus (if you live within 0.5 miles of our office)

  • A $1.5K monthly stipend for meals

  • Free Equinox membership

  • Health insurance

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About Mercor

Mercor

Mercor

Seed

Mercor is an AI-powered platform that connects companies with vetted software engineers and technical talent through automated screening and matching processes.

1-50

Employees

San Francisco

Headquarters

Reviews

4.0

10 reviews

Work-life balance

3.2

Compensation

3.5

Culture

4.3

Career

3.4

Management

4.2

72%

Recommend to a friend

Pros

Supportive management

Great team culture and collaboration

Good benefits and vacation policy

Cons

Heavy workload and overtime

Communication issues

Non-competitive pay

Salary Ranges

6 data points

Mid/L4

Mid/L4 · Machine Learning Engineer

1 reports

$210,126

total per year

Base

$161,637

Stock

-

Bonus

-

$210,126

$210,126

Interview experience

3 interviews

Difficulty

3.0

/ 5

Offer rate

67%

Experience

Positive 0%

Neutral 67%

Negative 33%

Interview process

1

Application Review

2

AI Interview

3

Domain Expertise Assessment

4

Offer

Common questions

Domain Knowledge

Behavioral/STAR

Leadership Experience

Industry Expertise