The client is a healthcare technology company on a mission to improve outcomes through data-driven insights. With a focus on delivering industry-leading Patient-Reported Outcome Measures (PROMs) adoption rates, the company empowers providers with tools for smarter operations and better care. Their current AI maturity presents a greenfield opportunity for technical leaders eager to define and implement strategic AI solutions in a collaborative and fast-paced environment.
Project Description
The project centers around developing a suite of AI-powered tools within a healthcare platform. These tools aim to enhance patient engagement, automate communication via sentiment-aware CRM integration, process unstructured device data using GenAI, and surface predictive analytics to detect early signs of patient risk. Additionally, a natural language-driven insights interface enables dashboard generation and anomaly detection to improve care quality, reduce operational costs, and increase platform engagement.
Technologies
What You'll Do
Architect, develop, and deploy ML solutions aligned with cost-reduction and revenue-growth KPIs;
Own the full ML lifecycle including data acquisition, model training, evaluation, A / B testing, and production deployment;
Translate business objectives into robust technical solutions in collaboration with stakeholders;
Refactor and modernize legacy components into scalable infrastructure;
Ensure high code quality through strong testing and observability practices;
Lead demos and workshops for business and technical audiences;
Job Requirements
Minimum 3+ years of experience in machine learning or data engineering roles;
Solid theoretical foundation in machine learning, natural language processing (NLP), and computer vision;
Strong Python development skills and experience building end-to-end ML / NLP / CV pipelines in production environments;
Proven experience deploying ML systems in cloud environments, preferably AWS (ECR, ECS, EC2, Lambda, Bedrock);
Hands-on experience with containerization tools like Docker and orchestration in production settings;
Familiarity with distributed systems and message-based architectures; Kafka experience is a plus;
Experience setting up and maintaining CI / CD pipelines and version control workflows using modern DevOps practices;
What Do We Offer
The global benefits package includes :
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Engineer • Georgia, VT, US