J
Jetbridge5mo ago
New

ML Engineer

Remote (Latin America, Europe)Remotemid
Machine Learning EngineerData
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Quick Summary

Overview

Build a drug access platform for a fast-growing, profitable health-tech company, where your machine learning models directly detect and prevent drug-access failures,

Technical Tools
Machine Learning EngineerData
Build a drug access platform for a fast-growing, profitable health-tech company, where your machine learning models directly detect and prevent drug-access failures, helping millions of insured Americans actually receive the medications their benefits promise.
 
We’re hiring a Machine Learning Engineer to work on applied predictive modeling and anomaly detection across complex, high-volume healthcare program data. This is a hands-on, senior IC role focused on turning messy real-world signals into clear, actionable insights that improve medication access across the U.S. healthcare system.
 
Unlike academic or toy ML problems, the work here sits directly in the flow of patient access: identifying failures in drug affordability programs, surfacing non-obvious breakdowns in benefit usage, and enabling teams to intervene before patients abandon treatment.
 
What You’ll Do
- Build predictive models (forecasting, time series, trend analysis) on real-world program and financial data.
- Design anomaly / outlier detection to surface risks, inefficiencies, and non-obvious patterns.
- Own feature engineering, model evaluation, and interpretability (feature importance, SHAP-style analysis).
- Work end-to-end from exploration → modeling → business-facing insights.
- Partner with product and analytics teams to turn models into decisions.
 
Must-Have
- 4–7 years as ML Engineer or Applied Data Scientist
- Strong predictive modeling + anomaly detection background
- Hands-on experience with messy, high-volume financial or program data
- Strong statistical intuition (not just fitting models)
- Python with Pandas / NumPy / scikit-learn
- Comfortable operating independently as a senior IC
 
Nice to Have
- U.S. healthcare-adjacent data (insurance, benefits, copay, utilization)
- Experience in compliance-aware environments (HIPAA-constrained data)
- Translating models into dashboards, reports, or exec-ready insights
- XGBoost / LightGBM, solid SQL
 
Explicitly Not Required
- MLOps ownership or DevOps work
- Managing teams
- Pharma biology expertise

Location & Eligibility

Where is the job
Worldwide
Fully remote, anywhere in the world
Who can apply
Same as job location

Listing Details

Posted
December 23, 2025
First seen
June 17, 2026
Last seen
June 18, 2026

Posting Health

Days active
0
Repost count
0
Trust Level
29%
Scored at
June 17, 2026

Signal breakdown

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J
ML Engineer