Level

Whoop

Staff AI Researcher (Foundation AI)

Whoop is hiring a Staff AI Researcher (Foundation AI) in Boston, United States. It pays $215k-$260k a year and Level rates it ; you can apply on Level.

AI in this role

pytorchtensorflow
fine-tuningml-opsai-research

At WHOOP, we’re on a mission to unlock and inspire performance for life. WHOOP empowers members to perform at a higher level through a deeper understanding of their bodies and daily lives. Our wearable technology collects rich physiological data, providing members with actionable insights into their recovery, training, and sleep.

We are seeking a Staff AI/ML Researcher to join our Foundation AI team. This team builds the multimodal foundation models that underpin WHOOP’s next generation of intelligent, personalized, and health-enhancing experiences. These models integrate data across wearable sensors, language, biomarkers, clinical information, and self-reported inputs to create scalable AI systems that understand human physiology and behavior.

In this role, you’ll serve as a staff individual contributor driving the research, development, and deployment of large-scale multimodal models. You’ll collaborate closely with data scientists, ML engineers, and cross-functional partners to push the boundaries of deep learning and ensure our models deliver measurable value to WHOOP members.

RESPONSIBILITIES:

  • Design, train, and optimize large-scale multimodal foundation models that integrate wearable sensor data, text, biomarkers, and behavioral data.

  • Conduct applied research in self-supervised learning, representation learning, and downstream task fine tuning to advance WHOOP’s core model capabilities.

  • Develop scalable, distributed training pipelines for large models on high-performance compute environments.

  • Collaborate with MLOps, data engineering, and software engineering teams to operationalize models for production deployment, ensuring robustness, reproducibility, and observability.

  • Partner with product and research teams to translate foundation model capabilities into downstream features that deliver meaningful member value.

  • Contribute to the technical roadmap and architectural direction for foundation model development at WHOOP.

  • Serve as a technical mentor for other data scientists, sharing best practices in deep learning, large-scale training, and multimodal data integration.

  • Ensure models adhere to WHOOP’s standards for ethical, transparent, and privacy-preserving AI.

QUALIFICATIONS:

  • Advanced degree (Master’s or Ph.D.) in Computer Science, Machine Learning, Electrical Engineering, or a related field, or equivalent professional experience.

  • 7+ years of experience in applied ML, AI research, or large-scale modeling, with a track record of delivering production systems.

  • Expertise in modern deep learning (e.g., transformers, state space models), multimodal model training.

  • Proficiency in Python and deep learning frameworks (e.g., PyTorch, TensorFlow).

  • Experience building and scaling large datasets and training large models in mulit-node, multi-gpu distributed compute environments.

  • Familiarity with best practices for data, model, and context parallelisms.

  • Strong applied experience with representation learning, self-supervised methods, and post-training for downstream applications.

  • Experience with reinforcement learning for post-training foundation models (PPO, DPO, GRPO etc.).

  • Familiarity with MLOps best practices including model versioning, evaluation, CI/CD for ML, and cloud-based compute.

  • Excellent communication skills and ability to collaborate cross-functionally with engineers, researchers, and product teams.

  • Passion for WHOOP’s mission to improve human performance and extend healthspan through science and technology.

This role is based in the WHOOP office located in Boston, MA. The successful candidate must be prepared to relocate if necessary to work out of the Boston, MA office.

 

Interested in the role, but don’t meet every qualification? We encourage you to still apply! At WHOOP, we believe there is much more to a candidate than what is written on paper, and we value character as much as experience. As we continue to build a diverse and inclusive environment, we encourage anyone who is interested in this role to apply.

 

WHOOP is an Equal Opportunity Employer and participates in E-verify to determine employment eligibility. It is unlawful in Massachusetts to require or administer a lie detector test as a condition of employment or continued employment. An employer who violates this law shall be subject to criminal penalties and civil liability.

How we rate this

Staff AI Researcher (Foundation AI) at Whoop rates 100 out of 100 for how much of the daily work is AI. That makes it Builds AI (AI Level 4 of 4). The level is about AI in the job, not seniority.

Classification

Builds AI. The job is building AI systems.

  1. ●●●● Builds AI80 to 100
  2. ●●●○ Works on AI60 to 79
  3. ●●○○ Uses AI40 to 59
  4. ●○○○ Little AI0 to 39

Levels come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.

Prepare for this job

A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.

Skills and AI tools this role asks for

Fine-tuningML OpsAI ResearchPyTorchTensorFlow

Questions you could be asked

  1. Walk me through fine-tuning a model: what data did you use, and how did you check the result?
  2. How do you monitor a model once it's live, and how do you know it needs retraining?
  3. Tell me about a research question you investigated. What did you find?
  4. What's a project where you used PyTorch hands-on?
  5. Walk me through how you've used TensorFlow in your day-to-day work.

Adapt your resume

  • List these exact terms on your resume: Fine-tuning, ML Ops, AI Research, PyTorch, and TensorFlow. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them. A tool named with nothing behind it rarely survives a human read.
  • Lead with what you built, trained or shipped. This role is judged on the AI system itself, not the tools around it.

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