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Senior Software Engineer – Applied AI
AMC HealthSenior Software Engineer leading the development of AI voice agents and ML systems for AMC Health. Working on real-time systems, LLMs, and traditional machine learning workflows with a focus on production environments.
Core Competencies
Role fitCore Competencies
Use this summary to align your resume positioning with the role.
Demonstrates extensive experience in building and operating production backend systems, with a strong focus on Python programming and the machine learning lifecycle. Proficient in managing LLMs and ensuring compliance in regulated environments while effectively debugging and tracing production issues.
Highest-signal resume keywords
Python ProgrammingLLM ExperienceDistributed SystemsMachine Learning LifecycleRegulated Environment Compliance
ATS Keywords
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Hard Skills
Production Backend SystemsDebuggingControl Systems DesignMetric Anomaly AnalysisBatch-Analysis PipelinesTelemetry AnalysisVendor Issue ResolutionGenerative AIProduction InferenceData Handling
Soft Skills
Judgment in Model UsageAttention to Detail
Tools & Technologies
Cloud InfrastructureTelemetry ToolsLLM Frameworks
Industry Keywords
Real-Time Voice PipelineML WorkflowsSensitive Data Management
Tech Stack
Tools & technologiesCloudDistributed SystemsPython
About the role
Key responsibilities & impact- Ship and debug code on a live, real-time voice pipeline where latency and correctness are user-facing
- Design control systems around LLMs: guardrails, budgets, watchdogs, safe fallbacks
- Build and operate LLM evaluation and batch-analysis pipelines
- Own traditional ML workflows from data to scheduled production inference
- Trace production issues from a metric anomaly to root cause, including building the evidence when the cause is a vendor
Requirements
What you’ll need- 7+ years building and operating production backend systems, with strong general-purpose programming skills (we work primarily in Python)
- Experience running distributed systems in the cloud; comfortable debugging from telemetry to root cause
- Hands-on production experience with LLMs or generative AI (any provider or framework), plus the judgment to know when not to use a model
- Working fluency across the traditional machine learning lifecycle (you productionize; you do not need to publish)
- Disciplined in a regulated environment: small, reviewable changes and careful handling of sensitive data
Benefits
Comp & perks- Opportunity to work with innovative AI technologies
- Collaborative team environment
- Rigorous code review process
- Emphasis on safety and privacy in engineering practices