Senior Data Scientist

Posted 4 Days Ago
San Francisco, CA, USA
Hybrid
180K-230K Annually
Senior level
Healthtech
The Role
Own end-to-end data science and AI evaluation projects, developing frameworks, metrics, golden datasets, benchmarks, pipelines, and dashboards for LLM- and speech-based systems. Analyze failure modes, calibrate LLM judges against human ground truth, and drive continuous product improvement. Collaborate with AI/ML engineers and product managers, contribute to technical strategy, mentor junior data scientists, and establish evaluation best practices.
Summary Generated by Built In

Ellipsis Health is creating cutting-edge AI/ML products that solve healthcare staffing issues and administrative burdens using conversational AI and our patented voice biomarker technology in the delivery of better healthcare for everyone. We are headquartered in Silicon Valley and are funded and supported by some of the most preeminent venture capital teams.

As a Data Scientist specializing in AI Quality & Evaluation, you will play a pivotal role in ensuring the robustness, accuracy, and fairness of our AI models and systems. You will be instrumental in developing comprehensive evaluation frameworks, creating diverse and high-quality datasets, and implementing metrics to drive continuous improvement across our AI initiatives. Your work will directly contribute to accelerating customer onboarding and enhancing the overall user experience.

Ellipsis Health is located in the San Francisco Bay Area, but we are open to remote candidates for this role, as long as they are located in the U.S.

Responsibilities

  • Drive High-Impact Projects: Own data science and AI evaluation projects end-to-end—from defining the problem and developing the methodology to executing the analysis, communicating results, and driving implementation.

  • Drive Continuous Improvement of LLM-as-a-Judge: Build the data and evaluation infrastructure for a closed-loop AI quality system, including golden datasets, ground-truth benchmarks, judge calibration, error analysis, and production feedback. Continuously identify failure modes and translate insights into improvements to datasets, evaluation methodologies, LLM-as-a-Judge systems, and the underlying AI products.

  • Develop Evaluation Frameworks: Design and implement robust evaluation frameworks, methodologies, and metrics for LLM- and speech-based AI systems. Develop scalable approaches that help us measure quality and accelerate customer onboarding.

  • Build and Manage Evaluation Datasets: Design, curate, and maintain high-quality datasets for training, testing, benchmarking, and evaluating conversational AI systems and their components.

  • Create and Manage Data Pipelines and Dashboards: Build and maintain scalable data pipelines and intuitive dashboards that enable reliable data analysis,ongoing AI quality monitoring, and data-driven decision-making across the organization.

  • Collaborate and Innovate: Work closely with AI/ML Engineers and Product Managers to integrate your findings into product enhancements. You'll stay current with the latest advancements in AI evaluation, particularly in Large Language Models (LLMs) and speech systems, contributing to our overall technical strategy.

  • Mentor and Lead: Mentor junior data scientists, establish best practices, and raise the technical bar across the team.

Qualifications

  • 5+ years of industry experience in data science, machine learning, or a related quantitative field.

  • Bachelor's or Master's degree in Computer Science, Data Science, Statistics, Mathematics, or a related quantitative field.

  • Strong proficiency in programming languages such as Python (with libraries like Pydantic, Pandas, NumPy, Scikit-learn).

  • Strong foundation in statistical analysis, experimental design, hypothesis testing, and A/B testing methodologies.

  • Experience working with large-scale datasets, data pipelines, and analytical tools to generate actionable insights.

  • Familiarity with evaluation metrics (precision, recall, agreement metrics like Cohen's Kappa) to calibrate judge models against human ground truth.

  • Demonstrated ability to independently own and drive projects from problem definition through execution and implementation..

  • Excellent communication and interpersonal skills, with the ability to collaborate effectively with AI/ML Engineers, Product Managers, and other cross-functional stakeholders in a fast-paced environment.

Bonus Points If You Have:

  • Experience with Natural Language Processing (NLP) techniques and understanding of LLM architectures and their evaluation challenges.
    Experience with Speech Technologies and their evaluation is a significant advantage.

  • Experience in a regulated industry (e.g., healthcare, finance). Familiarity with data governance principles, particularly concerning PII/PHI.

  • Experience with MLOps practices and deploying models to production.

  • Familiarity with Langfuse, cloud platforms (GCP, AWS, Azure) and data platforms such as Databricks.

Salary and Benefits

We offer competitive salary and benefits, including 401k matching up to a certain percentage of your salary, health, vision, and dental insurance, and very flexible paid time off. The typical salary range for this role is $180k-230k USD. The amount offered will be determined by a variety of factors including but not necessarily limited to your individual skills, qualifications, and past experience relative to the requirements of the role.

Background Checks

As a health technology company, we reserve the right to run a background check on any applicant to which we extend an offer and to re-perform any such check at any time during the course of employment. Please know that there is no set policy on rejecting candidates because of certain background check results, and that we look at a candidate as a whole before making any decisions. We comply with all “ban the box” laws in applicable jurisdictions.

Assistance

If you have a disability or otherwise require any assistance whatsoever in the application or recruitment process, please feel free to submit a request to [email protected].

 

Skills Required

  • 5+ years of industry experience in data science, machine learning, or a related quantitative field
  • Bachelor's or Master's degree in Computer Science, Data Science, Statistics, Mathematics, or a related quantitative field
  • Strong proficiency in Python, including libraries such as Pydantic, Pandas, NumPy, and Scikit-learn
  • Strong foundation in statistical analysis, experimental design, hypothesis testing, and A/B testing methodologies
  • Experience working with large-scale datasets, data pipelines, and analytical tools to generate actionable insights
  • Familiarity with evaluation metrics including precision, recall, and agreement metrics such as Cohen's Kappa
  • Ability to independently own and drive projects from problem definition through execution and implementation
  • Excellent communication and interpersonal skills for cross-functional collaboration
  • Experience with NLP techniques and LLM architectures and evaluation challenges
  • Experience with speech technologies and their evaluation
  • Experience in a regulated industry such as healthcare or finance
  • Familiarity with data governance principles, including PII and PHI
  • Experience with MLOps practices and deploying models to production
  • Familiarity with Langfuse, cloud platforms such as GCP, AWS, or Azure, and Databricks
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The Company
HQ: San Francisco, CA
45 Employees
Year Founded: 2019

What We Do

Ellipsis Health was founded with the belief that a person’s mental health should have the same priority as one’s physical health. The company saw an opportunity to connect the dots between the two - giving voice to a new standard of mental health care. By harnessing the unique power of the human voice as a biomarker for mental wellbeing, along with machine learning and AI, Ellipsis Health has established the first vital sign for mental health. Its technology identifies, measures, and monitors the severity of stress, anxiety, and depression at scale by analyzing a short sample of natural speech to create an objective and scalable clinical decision support tool. Through partnerships with providers, payers, employers and digital health companies, Ellipsis Health is working to positively impact the quality of care, shorten the time to diagnosis, drive workflow efficiencies, reduce costs and improve patient outcomes.

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