トレンド企業

Mercor
Mercor

Research Engineer

職種機械学習
経験ミドル級
勤務地San Francisco, Canada, United States
勤務オンサイト
雇用正社員
掲載2ヶ月前
応募する

必須スキル

SQL

Machine Learning

ABOUT MERCOR

Mercor is at the intersection of labor markets and AI research. 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 new San Francisco headquarters.

ABOUT THE ROLE:

As a Research Engineer at Mercor, you’ll work at the intersection of engineering and applied AI research. You’ll contribute directly to post-training and RLVR, synthetic data generation, and large-scale evaluation workflows that meaningfully impact frontier language models.

Your work will be used to train large language models to master tool use, agentic behavior, and real-world reasoning in real-world production environments. You’ll shape rewards, run post-training experiments, and build scalable systems that improve model performance. You’ll help design and evaluate datasets, create scalable data augmentation pipelines, and build rubrics and evaluators that push the boundaries of what LLMs can learn.

WHAT YOU’LL DO:

  • Work on post-training and RLVR pipelines to understand how datasets, rewards, and training strategies impact model performance.

  • Design and run reward-shaping experiments and algorithmic improvements (e.g., GRPO, DAPO) to improve LLM tool-use, agentic behavior, and real-world reasoning.

  • Quantify data usability, quality, and performance uplift on key benchmarks.

  • Build and maintain data generation and augmentation pipelines that scale with training needs.

  • Create and refine rubrics, evaluators, and scoring frameworks that guide training and evaluation decisions.

  • Build and operate LLM evaluation systems, benchmarks, and metrics at scale.

  • Collaborate closely with AI researchers, applied AI teams, and experts producing training data.

  • Operate in a fast-paced, experimental research environment with rapid iteration cycles and high ownership.

WHAT WE’RE LOOKING FOR:

  • Strong applied research background, with a focus on post-training and/or model evaluation.

  • Strong coding proficiency and hands-on experience working with machine learning models.

  • Strong understanding of data structures, algorithms, backend systems, and core engineering fundamentals.

  • Familiarity with APIs, SQL/NoSQL databases, and cloud platforms.

  • Ability to reason deeply about model behavior, experimental results, and data quality.

  • Excitement to work in person in San Francisco, five days a week (with optional remote Saturdays), and thrive in a high-intensity, high-ownership environment.

NICE TO HAVE:

  • Real-world post-training team experience in industry (highest priority).

  • Publications at top-tier conferences (NeurIPS, ICML, ACL).

  • Experience training models or evaluating model performance.

  • Experience in synthetic data generation, LLM evaluations, or RL-style workflows.

  • Work samples, artifacts, or code repositories demonstrating relevant skills.

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 $1K monthly stipend for meals

  • Free Equinox membership

  • Health insurance

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Mercorについて

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

従業員数

San Francisco

本社所在地

レビュー

10件のレビュー

4.0

10件のレビュー

ワークライフバランス

3.2

報酬

3.8

企業文化

4.3

キャリア

3.5

経営陣

4.2

72%

知人への推奨率

良い点

Supportive and approachable management

Great team culture and collaborative environment

Good benefits and flexible work options

改善点

Heavy workload and frequent overtime

Communication issues and miscommunication

Non-competitive pay and limited career progression

給与レンジ

6件のデータ

Mid/L4

Mid/L4 · Machine Learning Engineer

1件のレポート

$210,126

年収総額

基本給

$161,637

ストック

-

ボーナス

-

$210,126

$210,126

面接レビュー

レビュー3件

難易度

3.0

/ 5

内定率

67%

体験

ポジティブ 0%

普通 67%

ネガティブ 33%

面接プロセス

1

Application Review

2

AI Interview Screen

3

Technical Assessment

4

Final Review

5

Offer

よくある質問

Domain Expertise

Behavioral/STAR

Industry Knowledge

Leadership Experience

Problem Solving