Senior Machine Learning Engineer, Applied AI
Mexico, Mexico
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SimplePractice
Get the #1 HIPAA-compliant EHR and practice management software. Join 225,000+ therapists, health & wellness professionals. Start your free trial today.About UsÂ
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 theyâre 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. If you love tackling challenging problems and turning data into meaningful outcomes, youâll find a welcoming and dynamic environment here.
As a Senior Machine Learning Engineer, Applied AI, youâll be at the forefront of building product features that help clinicians work effectively and efficiently, providing quality care to patients. Youâll be designing experiments, building robust models, tuning prompts, implementing LLM evals, and driving projects from idea to prototype to production with product, engineering and devOps teams. Youâll also play an important role in the roadmapping exercises of our ML platform.Â
We value mentorship, open communication, and pushing the boundaries of what AI can do in a real-world healthcare context. Whether youâre fine-tuning a model, presenting insights to stakeholders, or brainstorming new product features, your work will have a direct and meaningful impact.
Key Responsibilities
- AI Prototyping and Development
- Develop AI workflows, customize data pipelines, tune models, and engineer prompts to bring idea to prototypeÂ
- Work with subject matter experts to set up evaluation for AI workflows, ensuring rigor, quality and safety of content outputÂ
- Work with eng partners to integrate AI workflows into production
- Build and configure AI performance monitoring with proper reporting and alerts
- Optimize and maintain AI workflows for performance, reliability, and long-term scalability
- ResearchÂ
- Start with the Job-to-be-done, dive deep into the domain and understand the problem from user perspectiveÂ
- Decompose problems into conquerable pieces. Design solutions to address each with cross-disciplinary thinking and big picture in mind.Â
- Conduct exploratory data analysis to answer key questions and test assumptions. Design experiments and build prototypes for proof-of-concept.Â
- Build artifacts to illustrate the findings with rigor and how they inform the roadmap and decisionsÂ
- Cross-Functional Collaboration
- Provide AI expert advice to product and eng partners in shaping product roadmap
- Partner closely with software eng, product, data eng, ML platform teams to scope and plan in executionÂ
- Communicate timeline, milestones, findings w/ internal stakeholders
- Mentor & Advocate Best Practices
- Guide less experienced team members, sharing knowledge on LLM workflows and AI/ML model lifecycleÂ
- Champion a culture of experimentation, continuous learning, and proactive problem-solving
- Drive Innovation
- 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 cliniciansâ lives easier, more efficient, and more effective
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Desired Skills & ExperienceÂ
- BS or above in Computer Science, Statistics or a related technical fieldÂ
- 5+ years of experience in Machine Learning, with proven track record of bringing ideas to life, from prototype to productized featuresÂ
- Strong proficiency in Python and hands-on with advanced data analysis toolsÂ
- Strong skills in data engineering and self-sufficient in data pipelines for the AI workflow
- Experience with AWS (or other cloud platforms) for model deployment
- Comfortable designing and evaluating LLM-driven workflows
- Familiarity with retrieval pipelines and vector databasesÂ
- Problem-oriented mindset with strong cross-disciplinary thinking and a bias toward simplicity and clarity in solving problemsÂ
- Comfort working with remote teams, using GitHub, Slack, Notion, and ZoomÂ
- Proficiency in English with strong communication and collaboration skill
Bonus PointsÂ
- Experience with RAG architecture and context/state management for LLMsÂ
- Familiarity with LLM eval tools and human-in-the-loop evaluation processÂ
- Experience with Outerbounds or similar ML orchestration platforms
- Experience with Argo Flows for CI/CD
- Experience with prompt management tool like Langfuse
- Familiarity with Kubernetes for container orchestration
- Background in healthcare, clinical workflows, or regulated domains
Benefits
We offer a competitive benefits program including:
- Privatized Medical, Dental & Vision Coverage
- Work From Home stipendÂ
- Flexible Time Off (FTO), wellbeing days, paid holidays, and Summer Fridays
- Monthly Meal Reimbursement
- Holiday Bonus, 15-day Aguinaldo
- Hybrid Work Schedule & Catered Lunch
- A relocation bonus for candidates joining us from a different cityÂ
- Employee Resource Groups (ERGs)
California Job Applicant Privacy Notice
Thank you for your interest in opportunities at SimplePractice LLC (âSimplePracticeâ or âusâ or âweâ or âourâ). Please note that when you submit your resume or application materials to us for employment purposes, you are subject to the SimplePractice California Job Applicant Privacy Notice.Â
For more information about our privacy practices, please contact us at privacy@simplepractice.com.
* Salary range is an estimate based on our AI, ML, Data Science Salary Index đ°
Tags: Architecture AWS CI/CD Computer Science Data analysis Data pipelines DevOps EDA Engineering GitHub Kubernetes LLMs Machine Learning Model deployment Pipelines Privacy Prototyping Python RAG Research Statistics
Perks/benefits: Career development Flex hours Flex vacation Health care Home office stipend Salary bonus Startup environment Wellness
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