Research, Finetuning Science

Posted 8 Days Ago
Be an Early Applicant
San Francisco, CA, USA
Hybrid
350K-475K Annually
Entry level
Artificial Intelligence • Information Technology
The Role
Advance fine-tuning and post-training research for frontier AI models, including LoRA and parameter-efficient fine-tuning. Improve the quality, efficiency, stability, and reliability of large-scale fine-tuning and reinforcement-learning runs. Translate research into Tinker’s training defaults, APIs, and open-source cookbook recipes, while communicating findings through papers, technical posts, and community contributions.
Summary Generated by Built In
About Thinking Machines

The mission of Thinking Machines is to build AI that extends human will and judgment. We are training frontier models with Inkling, developing Tinker to let people make models their own, and crafting interfaces that broaden human-AI communication. We believe the future worth building is human, and we're hiring people who want to build it.

About the Role

At Thinking Machines we build tools that enable people to make AI their own, customizing models to serve their unique needs. This includes the ability to train model weights.

In this role, you'll work on frontier customization techniques and help build the best post-training engine in the industry – Tinker – drawing on a whole-stack understanding of RL science. Findings directly shape Tinker's training defaults, API design, and the open-source Tinker Cookbook. You'll work with our internal research teams as well as contributing to open science for external partners.

 
What You’ll Do
 

In this role, you'll advance the science of fine-tuning and frontier post-training techniques. You’ll:

  • Contribute to areas like LoRA and parameter efficient fine-tuning and how to push customization quality, efficiency, and reliability to the frontier.

  • Ship research into product: inform Tinker's training defaults and primitives, and codify best-practice methods as recipes in the Tinker Cookbook.

  • Improve the stability, efficiency, and reliability of large-scale fine-tuning and RL runs on Tinker.

  • Share what you learn through papers, technical blog posts, and community contributions.

You’ll contribute to areas like LoRA, parameter-efficient fine-tuning, how things interact with RL and post-training, and how to push customization quality, efficiency, and reliability to the frontier.

 
Skills and Qualifications

Required qualifications:

  • Bachelor’s degree or equivalent experience in Computer Science, Machine Learning, Physics, Mathematics, or a related discipline with strong theoretical and empirical grounding.

  • Proficiency in Python and familiarity with deep learning frameworks (e.g., PyTorch, TensorFlow, or JAX). Comfort debugging distributed training and writing code that scales.

  • Clarity in communication, an ability to explain complex technical concepts in writing.

  • Strong interest in our mission to enable custom models.

Preferred qualifications — we encourage you to apply if you meet some but not all of these:

  • A strong grasp of probability, statistics, and ML fundamentals. You can look at experimental data and distinguish between real effects, noise, and bugs.

  • Prior experience with RLHF, RLAIF, preference modeling, or reward learning for large models.

  • Experience managing or analyzing human data collection campaigns or large-scale annotation workflows.

  • Research or engineering contributions in alignment, data-centric AI, or human-AI collaboration.

  • Experience with RL training stability techniques for large runs.

  • PhD in Computer Science, Machine Learning, Physics, Mathematics, or a related discipline with strong theoretical and empirical grounding; or, equivalent industry research experience.

Logistics
  • Location: This role is based in San Francisco, California.

  • Compensation: Depending on background, skills and experience, the expected annual salary range for this position is $350,000 - $475,000 USD.

  • Visa sponsorship: We sponsor visas. While we can't guarantee success for every candidate or role, if you're the right fit, we're committed to working through the visa process together.

  • Benefits: Thinking Machines offers generous health, dental, and vision benefits, unlimited PTO, paid parental leave, and relocation support as needed.

As set forth in Thinking Machines' Equal Employment Opportunity policy, we do not discriminate on the basis of any protected group status under any applicable law.

Skills Required

  • Bachelor's degree or equivalent experience in Computer Science, Machine Learning, Physics, Mathematics, or a related discipline with strong theoretical and empirical grounding.
  • Proficiency in Python and familiarity with deep learning frameworks such as PyTorch, TensorFlow, or JAX.
  • Comfort debugging distributed training and writing code that scales.
  • Clear written communication and ability to explain complex technical concepts.
  • Strong interest in enabling custom AI models.
  • Strong grasp of probability, statistics, and machine learning fundamentals.
  • Experience with RLHF, RLAIF, preference modeling, or reward learning for large models.
  • Experience managing or analyzing human data collection campaigns or large-scale annotation workflows.
  • Research or engineering contributions in alignment, data-centric AI, or human-AI collaboration.
  • Experience with reinforcement-learning training stability techniques for large runs.
  • PhD in Computer Science, Machine Learning, Physics, Mathematics, or a related discipline, or equivalent industry research experience.
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The Company
HQ: Singapore
91 Employees

What We Do

Thinking Machines Lab is an artificial intelligence research and product company. We're building a future where everyone has access to the knowledge and tools to make AI work for their unique needs and goals. While AI capabilities have advanced dramatically, key gaps remain. The scientific community's understanding of frontier AI systems lags behind rapidly advancing capabilities. Knowledge of how these systems are trained is concentrated within the top research labs, limiting both the public discourse on AI and people's abilities to use AI effectively. And, despite their potential, these systems remain difficult for people to customize to their specific needs and values. To bridge the gaps, we're building Thinking Machines Lab to make AI systems more widely understood, customizable and generally capable. We are scientists, engineers, and builders who've created some of the most widely used AI products, including ChatGPT and Character.ai, open-weights models like Mistral, as well as popular open source projects like PyTorch, OpenAI Gym, Fairseq, and Segment Anything.

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