RESEARCHER, POST-TRAINING

Posted 2 Days Ago
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San Francisco, CA, USA
In-Office
Senior level
Artificial Intelligence • Information Technology • Machine Learning • Software
The Role
Lead post-training research including SFT, RLHF/RLAIF, reward modeling, and evaluation suite design. Run rigorous experiments, curate preference data, scale data and training pipelines, identify failure modes, and partner with data, infrastructure, and engineering to ship improvements into production.
Summary Generated by Built In

ABOUT THE COMPANY

We're building autonomous research agents for recursive self-improvement (multi-agent systems that propose, run, and analyze machine learning experiments). We're a small team based in San Francisco, on-site

ABOUT THE ROLE

You'll lead our work on model post-training: supervised fine-tuning, preference data, reinforcement learning from human and AI feedback, reward modeling, and the evaluation suites that tell us what's actually working. You'll own a research area that meaningfully shapes our model behavior and capability.

This is a hands-on senior research role. You'll set direction, run experiments, and ship into production. You'll partner with the data, infrastructure, and engineering teams to make the post-training pipeline reliable and fast: improvements there compound into every model we ship.

WHAT YOU'LL DO

  • Lead post-training research: SFT, RLHF/RLAIF, RLVR, DPO and successor methods, reward modeling, preference data design

  • Design and curate the data that goes into post-training (from sourcing, to filtering, to quality assessment)

  • Build and maintain the evaluation suites that measure what matters; resist Goodharting your own benchmarks

  • Run rigorous experiments (controls, ablations, statistical significance) and write up internal findings clearly

  • Scale data pipelines and the infrastructure team to scale training

  • Identify and characterize failure modes (reward hacking, distribution drift, eval saturation) and design experiments to address them

  • Stay current on the post-training literature; bring useful methods in, ignore the noise

WHAT WE'RE LOOKING FOR

  • Strong track record of post-training research (SFT, RL, reward modeling) at a frontier-model lab or equivalent

  • 5+ years of hands-on ML research experience

  • Comfort with large-scale data curation and preference-data pipelines

  • Experience designing evaluation suites for capabilities that aren't easily benchmarked

  • Fluent in PyTorch or equivalent; comfortable at the scale of distributed training

  • Strong statistical instincts: you'd notice a flawed comparison before someone else points it out

  • Strong written communication

NICE TO HAVE

  • PhD in ML, statistics, CS, or adjacent

  • Published research at NeurIPS, ICML, ICLR, COLM, RLC, or comparable venues

  • Experience with reward hacking detection, scaling reward models, or RLHF infrastructure

  • Synthetic data generation experience

  • Background in RL math (policy gradients, importance sampling, off-policy methods)

  • Open-source contributions to post-training infrastructure

THIS ROLE IS PROBABLY NOT FOR YOU IF

  • You're primarily interested in pretraining (that's a different role)- You'd rather invent novel methods in isolation than ship them into a model that real users run

  • You prefer benchmarks that are stable to evaluation work where the right answer isn't yet defined

Skills Required

  • Strong track record of post-training research (SFT, RL, reward modeling)
  • 5+ years of hands-on ML research experience
  • Comfort with large-scale data curation and preference-data pipelines
  • Experience designing evaluation suites for hard-to-benchmark capabilities
  • Fluent in PyTorch or equivalent and comfortable with distributed training at scale
  • Strong statistical instincts and experimental rigor (controls, ablations, significance)
  • Strong written communication
  • PhD in ML, statistics, CS, or adjacent
  • Published research at major ML venues (NeurIPS, ICML, ICLR, etc.)
  • Experience with reward hacking detection, scaling reward models, or RLHF infrastructure
  • Synthetic data generation experience
  • Background in RL math (policy gradients, importance sampling, off-policy methods)
  • Open-source contributions to post-training infrastructure
Am I A Good Fit?
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The Company
8 Employees

What We Do

MakerMaker.AI is an innovative company building autonomous research agents focused on recursive self-improvement. They develop sophisticated multi-agent systems that can independently propose, run, and analyze complex machine learning experiments. By creating agents that have the ability to build other agents, MakerMaker.AI seeks to accelerate the development of artificial intelligence and push the boundaries of autonomous research in machine learning.

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