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Jobtailor

San Francisco / Global

Staff Data Scientist - Personalization, Intelligence

Job Description

  • Own the team’s semantic and intelligence architecture for member, customer, and provider profile data
  • Provide system-wide design guidance and ensure robust data contracts across platform teams
  • Use AI to explore and validate architectural patterns and decisions
  • Design AI-augmented workflows such as automated code generation and incident analysis
  • Enable personalized decisioning systems, agentic workflows, and real-time inference serving on AWS
  • Establish guardrails for safe, compliant, and correct LLM-based AI usage
  • Influence large cross-team projects and remove execution barriers
  • Create strategies and objectives for the core intelligence and recommendation engine
  • Build relationships with cross-functional teams and business stakeholders and make short- and long-term tradeoffs
  • Mentor and develop data scientists and engineers across the organization on DS/ML best practices
  • Participate in an on-call rotation and improve preparation and planning to reduce production incidents
  • Lead large-scale initiatives to reduce technical debt, improve architecture, and meet latency and scalability targets for production AI systems
Requirements
  • 8+ years of experience building production ML/AI systems, inference microservices, and real-time data pipelines
  • Hands-on experience with Snowflake and OpenSearch for profile data/vector search
  • Experience with LLM orchestration, including LangGraph and LangSmith
  • Proven Staff-level track record operating effectively in highly ambiguous territories, investigating emerging technologies, and aligning diverse stakeholders around a clear technical strategy
  • Demonstrated ability to mentor and develop engineers across the organization
  • Ability to cover broad technology areas while diving deep into architectural complexity and scalability for data flows, model pipelines, inference endpoints, and endpoint management
  • Track record of technical leadership, creating clarity from ambiguity, defining strategy from vision, and driving organization-wide architectural improvements
  • Advanced degree (MS/PhD) in Computer Science, Machine Learning, or a related field
Core Competencies

Expertise in building production ML/AI systems and real-time data pipelines, with a strong focus on architectural complexity and scalability. Proven ability to mentor teams and influence cross-functional projects while ensuring compliance and safety in AI usage.

Highest-signal resume keywords
  • Production ML/AI Systems Development
  • Real-Time Data Pipelines
  • LLM Orchestration
  • Technical Leadership
  • Mentoring Data Scientists and Engineers
Hard Skills
  • Machine Learning
  • Artificial Intelligence
  • Data Pipeline Development
  • Architectural Design
  • Inference Microservices
  • Automated Code Generation
  • Incident Analysis
  • Scalability Optimization
  • Data Contracts
  • Technical Debt Reduction
Soft Skills
  • Cross-Functional Collaboration
  • Stakeholder Alignment
  • Strategic Thinking
  • Problem Solving
  • Mentorship
Certifications & Qualifications
  • Advanced Degree in Computer Science
  • Advanced Degree in Machine Learning
Industry Keywords
  • AI-Augmented Workflows
  • Real-Time Inference Serving
  • Data Science Best Practices
  • Profile Data Management
  • Recommendation Engine
Tools & Technologies
  • AWS
  • Snowflake
  • OpenSearch
  • LangGraph
  • LangSmith
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