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Alignment Health

Senior AI Automation Engineer

RemoteUnited States only
Published
Role
AI / ML
Experience
Senior
Employment
Full-time
$172.4k–$258.5k/yr
Check eligibility

Open to US only. Set where you work from to check your eligibility.

No BS summary

Senior individual contributor and technical leader on the Data & Technology Solutions team, responsible for architecting, building, and scaling intelligent AI systems and enterprise automation solutions. You will serve as a go-to technical expert for AI Scientists, Data Engineers, Product Managers, Clinical Operations, and Application Engineering teams — driving end-to-end delivery of production AI systems that span claims processing, risk adjustment, prior authorization, revenue integrity, and member engagement. This role carries a higher degree of independent ownership and technical authority than the mid-level equivalent, with expectations to lead complex, ambiguous initiatives from concept through production and to actively elevate the engineering practices of the broader team.

Core skills

AI AutomationLLMRPA

Required skills

PythonPyTorchTensorFlowscikit-learnHugging Face TransformersLangChainLangGraphAutoGenCrewAIUiPath/Power Automate/Automation AnywhereApache Airflow/Prefect/n8nAWS SageMaker/Azure AI/Google Cloud Vertex AI/DatabricksAzure Document IntelligenceDockerKubernetesMLflow/KubeflowSQLHL7 FHIR/ICD-10/CPT codes

Optional skills

MLOpsresponsible AIagentic AI developmentUiPath certificationAutomation Anywhere certificationMicrosoft Power Automate certificationAWS certificationMicrosoft Azure certification

Required languages

English

What you'll do

  • Architect and deliver production-grade AI and machine learning systems.
  • Lead the end-to-end design and deployment of predictive and generative AI models — including NLP, classification, regression, and computer vision — for high-stakes Medicare Advantage workloads.
  • Own architectural decisions related to model selection, scalability, and production readiness, and establish monitoring and drift detection standards adopted across the team.
  • Lead the design and scaling of intelligent process automation.
  • Evaluate and architect enterprise-wide automation strategies using RPA platforms (e.g., UiPath, Power Automate) and orchestration tools (e.g., Airflow, Prefect).
  • Drive automation ROI analysis, establish engineering standards for fault-tolerant workflow design, and serve as the senior technical owner for the organization's most complex automation pipelines.
  • Own AI/ML data infrastructure strategy and pipeline reliability.
  • Design and govern robust ETL and feature engineering pipelines that support model training, validation, and real-time inference at scale.
  • Define infrastructure standards for experimentation, retraining, and monitoring that ensure consistent model performance across a regulated, high-availability production environment.
  • Lead the integration of deployed models and automation services into enterprise products via REST APIs and microservices, setting the engineering bar for security, HIPAA compliance, and maintainability.
  • Drive adoption of containerization (Docker, Kubernetes) and CI/CD best practices across the AI engineering team.
  • Define the technical approach for integrating large language models into clinical and operational workflows — including prompt engineering, fine-tuning, RAG pipelines, and multi-agent orchestration frameworks ( LangChain , LangGraph , AutoGen ).
  • Own delivery of agentic AI solutions that transform end-to-end workflows in areas such as clinical document intelligence, intelligent prior authorization, and member communication.
  • Own the performance, reliability, and scalability posture of AI and automation systems across the team.
  • Define alerting, testing, and tuning frameworks that proactively surface degradation before it affects member outcomes, and lead post-incident reviews to build organizational resilience.
  • Provide senior technical mentorship to mid-level and junior engineers through hands-on code reviews, design critiques, and paired problem-solving.
  • Contribute to hiring, technical interviews, and the establishment of team-wide engineering standards — including responsible AI practices such as bias detection, model explainability, and governance in high-stakes healthcare contexts.

What they require

  • 5–8 years of professional experience in software engineering with a demonstrated, progressive focus on AI/ML, data science, or intelligent process automation
  • Proven track record of independently owning and delivering complex, production-grade AI/ML systems from design through deployment and ongoing operations
  • Demonstrated experience with the full AI/ML model lifecycle at scale: data architecture, model design, training, validation, deployment, monitoring, and retraining
  • Experience in a regulated industry (healthcare, insurance, or financial services) with deep working knowledge of compliance and security requirements in production AI environments
  • Experience architecting and scaling automation solutions using RPA platforms and workflow orchestration tools, including cross-functional stakeholder engagement and ROI governance
  • Experience applying AI, NLP, or ML to complex healthcare data including claims processing, revenue cycle management, prior authorization, medical coding, or clinical text understanding
  • Demonstrated knowledge of healthcare data standards including HL7 FHIR, ICD-10/CPT codes, or DICOM
  • Experience in a Medicare Advantage, managed care, or payer environment at a senior engineering level
  • Prior experience as an informal technical lead, principal engineer, or engineering lead on an AI/ML team
  • Bachelor's degree in Computer Science , Engineering, Mathematics, Data Science, or a related quantitative field
  • Equivalent combination of education and demonstrated , progressive senior-level hands-on experience will be considered
  • Advanced, demonstrated proficiency with Python and ML frameworks through professional work experience at a senior level; formal training or equivalent self-directed mastery accepted
  • Hands-on experience with cloud AI/ML platforms (AWS SageMaker, Azure AI, or Google Vertex AI) at an architecture or senior engineering level; certification or equivalent experience accepted
  • Applied experience with ethical AI frameworks including bias detection, model explainability (SHAP, LIME, or equivalent), and AI governance practices; ability to embed responsible AI standards into team workflows where AI outputs directly influence member care and financial decisions

Benefits

  • Alignment Health is an Equal Opportunity/Affirmative Action Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, disability, age, protected veteran status, gender identity, or sexual orientation.

Alignment Health is breaking the mold in conventional health care, committed to serving seniors and those who need it most: the chronically ill and frail.

HealthcareEnterprise

What people say about this company

2.9/ 5

  • Mixed reviews on management effectiveness.
  • Some employees appreciate the mission and values of the company.
  • Concerns about work-life balance and workload.
Also posted in 1 other channel
$172.4k–$258.5k/yr