Staff Data Scientist
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Staff Data Scientist
126,000–178,000 / Year
Location
USA - California – Irvine
Experience
Senior
Posted
Jul 10, 2026
Apply by
August 9, 2026
Applicants
0
Early applicantEasy applyFull-timeWork from Office
Job Description
Many structural heart patients suffer from heart failure with limited options. Our Implantable Heart Failure Management (IHFM) team, part of the AI, Product and Platforms organization, is at the forefront of addressing these unmet patient needs through pioneering technology that enables early, targeted therapeutic intervention. Our innovative solutions are not just transforming patient care but also creating a unique and exciting environment for our team members. It is our driving force to help patients live longer and healthier lives. Join us and be part of our inspiring journey.
At Edwards Lifesciences, the Implantable Heart Failure Management (IHFM) AI, Product and Platforms organization designs and builds the software and data products that clinicians and patients depend on. As a Staff Data Scientist, you design the modeling and evaluation approaches that others build on for a problem class, set validation strategy, and raise the modeling rigor of the teams around you, while remaining deeply hands-on.
Based in Irvine, CA, you'll join a high-impact medtech innovation hub in the heart of Orange County, collaborating in person with cross-functional teams to shape patient-focused technology.
## **How you'll make an impact**
- Approach design. Design the modeling and evaluation approaches others build on for a problem class, for example, medical imaging segmentation or multimodal patient-state modeling, and build the reference implementations yourself.
- Advanced paradigms. Bring advanced paradigms to bear where they fit, including self-supervised and contrastive learning, multi-task learning, and cross-modal fusion.
- Validation strategy. Set offline validation, calibration, and clinical performance evaluation strategy, including subgroup and fairness analysis, with Medical Affairs and Clinical Science.
- Reusable practice. Establish reusable modeling patterns, evaluation harnesses, and documentation practices that meet regulatory submission expectations.
- Efficiency & scale. Apply label-efficient methods (active, semi-supervised, weak supervision) and efficient training at scale (distributed training with Ray or PyTorch).
- Research evaluation. Lead evaluation of emerging AI/ML for health research and decide what to adopt for IHFM problems.
- Technical leadership. Mentor senior and mid-level data scientists and shape the research to productization handoff with AI/ML Engineers (Applied).
- Model performance, optimization & process enablement. Guide implementation of processes and tools to develop, analyze, and improve model performance and data accuracy; apply predictive modeling and algorithms to datasets to optimize outcomes (e.g., clinical trial experience) and ensure models remain current.
- Stakeholder partnership, testing & reporting. Partner with internal and external stakeholders to plan implementation, testing, training, and monitoring of machine learning models; conduct ad hoc analyses (e.g., effectiveness metrics) and present results and insights to leadership.
- Data governance, sourcing & enablement. Drive processing of structured and unstructured data with data stewards, including data governance practices; identify and integrate diverse data sources to enhance solutions in collaboration with business stakeholders.
## **What you'll need (Required):**
- Bachelor's in Computer Science, Engineering, Biostatistics or Scientific field plus 6 years of experience including either industry or industry / education -or- Master's plus 5 years -or- PhD plus 2 years.
- Relocation is not provided for this role. Only candidates within a 50-mile radius of Irvine, California will be considered.
## **What else we look for (Preferred):**
- Deep domain expertise in cardiac, hemodynamic, imaging, or physiological modeling.
- Recognized depth across multiple paradigms and architecture families, including self-supervised and multimodal approaches.
- Depth in one or more data modalities (physiological modeling, medical imaging, or multimodal fusion) and in calibration and uncertainty quantification.
- The ability to set modeling and validation standards that others follow, and to represent modeling decisions to clinical and regulatory partners.
- Fluency across the modeling stack (for example, PyTorch, PyTorch Lightning, and experiment tracking) sufficient to set team practice.
- Advanced generative or graph methods (diffusion models, graph neural networks), or federated learning methodology.
- Demonstrated technical leadership and mentorship.
- Performance engineering for training (C++, CUDA, JAX, or DeepSpeed).
- A history of shaping clinical validation strategy and regulatory submissions for models.
- Recognized research contributions in AI/ML for health.
- Active learning or weak supervision to reduce clinical labeling cost.
Aligning our overall business objectives with performance, we offer competitive salaries, performance-based incentives, and a wide variety of benefits programs to address the diverse individual needs of our employees and their families.
For California (CA), the base pay range for this position is $126,000 to $178,000 (highly experienced).
The pay for the successful candidate will depend on various factors (e.g., qualifications, education, prior experience). Applications will be accepted while this position is posted on our Careers website.
Edwards is an Equal Opportunity/Affirmative Action employer including protected Veterans and individuals with disabilities.
**COVID Vaccination Requirement**
Edwards is committed to protecting our vulnerable patients and the healthcare providers who are treating them. As such, all patient-facing and in-hospital positions require COVID-19 vaccination. If hired into a covered role, as a condition of employment, you will be required to submit proof that you have been vaccinated for COVID-19, unless you request and are granted a medical or religious accommodation for exemption from the vaccination requirement. This vaccination requirement does not apply in locations where it is prohibited by law to impose vaccination.
Key Responsibilities
- Design modeling and evaluation approaches for problem classes such as medical imaging segmentation or multimodal patient-state modeling.
- Build reference implementations and establish reusable modeling patterns and evaluation harnesses.
- Set offline validation, calibration, and clinical performance evaluation strategies including subgroup and fairness analysis.
- Apply label-efficient methods and efficient training at scale using distributed training with Ray or PyTorch.
- Lead evaluation of emerging AI/ML for health research and decide on adoption for IHFM problems.
- Mentor senior and mid-level data scientists and shape research to productization handoff with AI/ML Engineers.
- Guide implementation of processes and tools to develop, analyze, and improve model performance and data accuracy.
- Partner with stakeholders to plan implementation, testing, training, and monitoring of machine learning models.
- Drive processing of structured and unstructured data with data stewards and integrate diverse data sources.
Requirements
- Bachelor's degree in Computer Science
- Engineering
- Biostatistics or Scientific field with 6 years of experience
- Master's degree with 5 years of experience
- PhD with 2 years of experience
Skills Required
PyTorchRayMedical imaging segmentationMultimodal patient-state modelingSelf-supervised learningContrastive learningMulti-task learningCross-modal fusionOffline validationCalibrationClinical performance evaluationSubgroup analysisFairness analysisDistributed trainingLabel-efficient methodsActive learningSemi-supervised learningWeak supervisionData governanceData sourcingTechnical leadershipMentorshipCollaborationStakeholder partnershipCommunicationCardiac domain expertiseHemodynamic modelingPhysiological modelingMedical imagingMultimodal fusionUncertainty quantificationPyTorch LightningExperiment trackingDiffusion modelsGraph neural networksFederated learningC++CUDAJAXDeepSpeedPerformance engineeringCommunication with clinical and regulatory partners
Benefits
- Competitive salaries
- Performance-based incentives
- Wide variety of benefits programs
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