WHOOP

Senior Machine Learning Engineer , AI Platform

WHOOP$150K — $210K *
Consumer Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3+ years in applied machine learning or ML-focused engineering roles with production experience.
  • Hands-on building with modern language models, including prompt design and fine-tuning.
  • Strong grasp of ML fundamentals: dataset construction, feature engineering, and evaluation metrics.
  • Knowledge of LLM training and alignment techniques like supervised fine-tuning (SFT) and reinforcement learning (RL).
  • Proven experience in building and operating ML systems from data pipelines to production deployment.
  • Proficiency in data manipulation with messy, multi-source data sets.
  • Familiarity with secure, privacy-aware AI practices.

Responsibilities

  • Design and operate production AI systems that empower WHOOP's conversational and predictive capabilities.
  • Lead AI system initiatives from problem definition through deployment, collaborating with data science and product teams.
  • Build and maintain pipelines for curating and reshaping diverse data into usable training datasets.
  • Operationalize workflows for tuning large language models for member-facing features.
  • Develop frameworks for faster, safer experimentation and model deployment with robust observability.
  • Create feedback loops connecting live data and evaluations to refine AI models continually.
  • Mentor team members in AI/ML best practices to elevate team expertise.

Benefits

  • Generous equity package that aligns employees with long-term company success.
  • Encouragement to apply even if not all qualifications are met, fostering a diverse and inclusive work environment.
  • Opportunities for career development through WHOOP’s Career Framework.
  • Collaborative work culture that values communication and alignment across teams.
Full Job Description
WHOOP is hiring a Senior AI/ML Engineer to help scale the intelligence layer behind WHOOP's AI-powered experiences, including WHOOP Coach, AI-powered Support, and new intelligent features across the product. In this role, you will own core components of the AI Platform that power our internal AI Studio: evaluation pipelines, fine-tuning workflows, LLM observability, and experimentation tooling. You will partner closely with product and data science to translate real member needs into reliable, impactful AI systems that improve continuously based on real-world usage.

RESPONSIBILITIES:
  • Design, build, and operate production AI systems and scaffolding around language models that power conversational, predictive, and generative capabilities across WHOOP products.
  • Lead end-to-end AI system initiatives spanning problem definition, data flows, dataset design, evaluation harnesses, deployment, and iteration in close partnership with data science and product.
  • Build and maintain pipelines for collecting, curating, and reshaping messy, multi-source data into high-quality, well-structured training and evaluation datasets for language model-based systems.
  • Operationalize fine-tuning and evaluation workflows for large language models behind member-facing features such as WHOOP Coach and AI Support, including defining datasets, labels, and taxonomies that reflect real member needs.
  • Develop tooling and frameworks that make experimentation, offline/online evaluation, and model deployment faster, safer, and more repeatable, including robust observability for AI features in production.
  • Build and maintain feedback loops that connect real member interactions, offline evaluations, and training data updates so that models improve continuously based on real-world behavior.
  • Mentor other engineers and data scientists, share best practices in applied AI/ML, and help elevate the overall technical bar of the AI Platform team.

QUALIFICATIONS:
  • 3+ years of experience in applied machine learning, AI engineering, or ML-focused software engineering roles, including significant work in production environments.
  • Hands-on experience building with modern language models (open-weight or API-based), including prompt design, fine-tuning, and rigorous evaluation.
  • Solid working understanding of ML fundamentals (dataset construction, feature engineering, training workflows, evaluation metrics, experiment design) sufficient to make good engineering tradeoffs and partner effectively with data scientists.
  • Familiarity with modern LLM training and alignment techniques such as supervised fine-tuning (SFT), direct preference optimization (DPO), and reinforcement learning (RL), and how they influence data requirements, evaluation strategies, and system design in production.
  • Proven track record building, shipping, and operating ML-powered systems end to end, from data pipelines (batch and/or streaming) that transform large datasets into usable training and evaluation sets to production deployments with inference optimization, observability, and lifecycle management.
  • Strong proficiency in data manipulation and analysis, including working with messy, multi-source, and semi-structured data and translating product questions into well-defined datasets, labels, and evaluation splits.
  • Familiarity with best practices for secure, privacy-aware AI and working with sensitive data.
  • Excellent communication and collaboration skills, with the ability to influence across teams and drive alignment on technical direction.

Learn more about our Software Org and how to be successful in your engineering career at WHOOP via our Career Framework. Also check out our AI studio blog here.

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.

The WHOOP compensation philosophy is designed to attract, motivate, and retain exceptional talent by offering competitive base salaries, meaningful equity, and consistent pay practices that reflect our mission and core values.

At WHOOP, we view total compensation as the combination of base salary, equity, and benefits, with equity serving as a key differentiator that aligns our employees with the long-term success of the company and allows every member of our corporate team to own part of WHOOP and share in the company's long-term growth and success.

The U.S. base salary range for this full-time position is$150,000 - $210,000. Salary ranges are determined by role, level, and location. Within each range, individual pay is based on factors such as job-related skills, experience, performance, and relevant education or training.

In addition to the base salary, the successful candidate will also receive benefits and a generous equity package.

These ranges may be modified in the future to reflect evolving market conditions and organizational needs. While most offers will typically fall toward the starting point of the range, total compensation will depend on the candidate's specific qualifications, expertise, and alignment with the role's requirements.

Learn more about WHOOP.

About WHOOP

WHOOP is a wearable technology company that specializes in fitness tracking. The company was founded in 2012 and is based in Boston, Massachusetts. WHOOP's flagship product is a wristband that tracks various metrics related to fitness and health, such as heart rate variability, sleep quality, and recovery time. The company also offers a subscription service that provides personalized insights and recommendations based on the data collected by the wristband. WHOOP has raised over $200 million in funding and has partnerships with several professional sports leagues and teams.
Learn more about WHOOP
Size
500 employees
Industry
Founded
2011

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