Applied Data Scientist

Getvi

Boston (MA)

On-site

USD 180,000 - 230,000

Full time

8 days ago
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Job summary

Getvi seeks an Applied Data Scientist to own 3–5 enterprise healthcare accounts, design pilots, integrate customer data, and build automated pipelines that train, score, and deliver insights on a schedule.

You will work with client teams across analytics, marketing, and clinical operations to translate business needs into Vi's platform requirements, guiding deployments from pilot to autopilot. Occasional onsite travel is expected.

Qualifications

  • Ability to design defensible experiments linking model outputs to business outcomes.
  • Deep understanding of data science methods and model limitations.
  • Excellent ability to communicate complex results to non-technical stakeholders.

Responsibilities

  • Data integration: Own the pipeline between customer data systems and Vi's data platform.
  • Pilot design: Design studies that tie model performance to a business outcome.
  • Automated production pipelines: Build per-customer pipelines that train, score, and deliver insights automatically.
  • Customer ownership: Be the technical authority across onboarding and ongoing operations.
  • Product leverage: Synthesize common patterns into platform requirements for faster deployments.

Skills

Experimental design
Model explainability
Client-facing communication
Data pipeline thinking
Ownership & accountability

Tools

Python
Pandas
scikit-learn
Airflow
PySpark
Spark

Job description

Role Summary

Vi Engage puts predictive models into the daily operations of the largest health systems and health plans in the country — driving care navigation, specialty capture, and the workflows that follow from them. Applied Data Scientists are the people who turn a new customer into a running deployment on Vi's platform.You will own 3–5 enterprise healthcare accounts at a time, end to end. For each one you are the data expert in the room: you design the pilot that proves value, integrate the customer's data (tokens, claims, EHR, marketing) into Vi's platform and build the automated pipelines that train, score, and deliver insights on a schedule. You stay the technical owner through operations and drive accounts to “autopilot”.This is a hands‑keyboard role with direct exposure to stakeholders. You are expected to sit with customer teams with expertise in analytics, marketing, and clinical operations to understand what KPIs they need to move, and how to leverage Vi’s capabilities to make it a reality. What you learn in the field becomes the product: you will spot the patterns across your accounts and turn them into the requirements that shape Vi's roadmap.

What You'll Own
  • Data integration. Own the pipeline between customer data systems and Vi's data platform — ingestion, mapping, quality, and the judgment calls about what the data can and cannot support.
  • Pilot design. Design studies that tie model performance to a business outcome the customer will underwrite. Power, controls, confounders, and a metric that survives scrutiny from a sophisticated internal analytics team.
  • Automated production pipelines. Build per-customer pipelines that use Vi’s ML capabilities to train, score, and deliver insights without manual intervention — and keep them running.
  • Customer ownership. Be the technical authority across onboarding and ongoing operations, including the ad-hoc data and reporting questions that come with a live account.
  • Product leverage. Identify what's common across customers and synthesize it into high-leverage requirements for the platform, so the next deployment is faster than the last.
What We're Looking For

Experimental design you can defend. You have designed and run studies where the result mattered commercially — and you can explain, to a skeptical stakeholder, why the design supports the conclusion. This is the capability we screen hardest on. Real data science depth. You can explain how a model works, evaluate it honestly, and say what it is not good for. You know when a simpler approach is the right answer. Python and ML engineering. Fluent in Python and the working stack — pandas, sklearn, airflow. You ship code to production that automates client deliverables. PySpark at scale. You have built distributed data and ML pipelines on Spark against large, messy datasets. Client-facing command. You can run a working session with clinical, IT, and analytics leaders at a major health system or health plan on your own — translating between their business problem and what the data will actually support, and holding the line when the answer isn't what they hoped. You will occasionally travel onsite with clients.Ownership instinct. You treat your accounts as yours: you find the problem before the customer does and you fix it.

Nice To Have
  • Healthcare or life sciences domain knowledge — claims, EHR, HL7/FHIR, lab data, or population health analytics
  • Experience designing and optimizing the targeting of marketing and engagement campaigns
  • AWS data infrastructure: S3, Glue, EMR, MWAA, SageMaker
  • Familiarity with HIPAA and healthcare compliance and data governance frameworks
  • Experience taking a product from its first customer deployment to a repeatable one
What This Role Is Not

This is an applied, in-production role. It is not a research position — the work is measured by deployments that run and outcomes customers can point to, not by novelty. And it is not a delivery or engagement management role: you will be architecting and writing the pipelines yourself, not coordinating someone else who does.

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