Job Description
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About Us
At SimplePractice, our team is dedicated to improving the health and wellness industry by building a suite of innovative solutions for practitioners and their clients. Our product supports practitioners on their clinical journey to becoming licensed, helps them manage their business and practice once they’re up and running, and enables new clients to discover and interact with practitioners. Taking a practitioner-first approach in everything we do makes it possible for health and wellness practitioners to devote more time to their clients while they use SimplePractice to start, grow, and maintain a successful private practice.
The Role
Our team is dedicated to empowering clinicians through data-driven innovations. We combine rigorous data science with practical engineering to build systems that make daily workflows more efficient, insightful, and intuitive. Our responsibilities span everything from data ingestion and transformation to advanced ML model deployment—ensuring clinicians have the right information at the right time to deliver exceptional care.
We thrive on curiosity, collaboration, and continuous learning. By working closely with Product, Design, and Engineering, we aim to create solutions that genuinely enhance clinician experiences. If you love tackling challenging problems and turning data into meaningful outcomes, you’ll find a welcoming and dynamic environment here.
As a Senior Machine Learning Engineer , you’ll be at the forefront of using data to shape and optimize clinician workflows. Your day-to-day will blend creative problem-solving with hands-on technical work—designing experiments, building robust models, and collaborating with cross-functional teams to bring new ideas to life. You’ll be instrumental in guiding data initiatives that drive our product roadmap, helping us create intuitive features and tools that clinicians rely on every day.
You’ll also have plenty of chances to sharpen and share your expertise. We value mentorship, open communication, and pushing the boundaries of what ML can do in a real-world healthcare context. Whether you’re fine-tuning a model, presenting insights to stakeholders, or brainstorming new product features, your work will have a direct and meaningful impact.
Key Responsibilities
- Build end-to-end solutions—from data exploration to model deployment—that enhance clinician experiences
- Optimize and maintain models for performance, reliability, and long-term scalability
- Lead Advanced Analysis
- Conduct deep-dive analyses, uncovering insights that drive product decisions
- Collaborate with product teams to turn data into actionable next steps
- Cross-Functional Collaboration
- Work closely with Engineering, Product, and Design to ensure ML features are intuitive, impactful, and aligned with clinician needs
- Communicate complex results clearly to both technical and non-technical partners
- Guide less experienced team members, sharing knowledge on model development, MLOps, and data engineering
- Champion a culture of experimentation, continuous learning, and proactive problem-solving
- Stay current with emerging ML tools and technologies, integrating new techniques that elevate our product capabilities
- Look for creative ways to leverage data to make clinicians’ lives easier, more efficient, and more effective
Desired Skills & Experience
- Proficiency in Python (NumPy, Pandas, scikit-learn)
- Strong skills in SQL (window functions, advanced queries)
- Hands-on experience with DBT for data transformation
- Familiarity with Snowflake or similar data warehouses
- Experience with AWS (or other cloud platforms) for model deployment
Bonus Points
- Exposure to Outerbounds or similar ML orchestration platforms
- Experience with Argo Flows for CI/CD
- Familiarity with Kubernetes for container orchestration
Seniority level
Seniority level
Mid-Senior level
Employment type
Employment type
Full-time
Job function
Job function
Engineering and Information TechnologyIndustries
Software Development
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