Senior AI Engineer at SecurityScorecard designing customer-facing AI features using TypeScript, Go, and AWS. Responsible for integrating AI capabilities into security solutions and collaborating with cross-functional teams.
Responsibilities
Design, build, and ship customer-facing AI-powered product features using TypeScript, Go, and AWS, owning quality and reliability end-to-end
Architect and implement agentic workflows, LLM pipelines, and intelligent automation that help customers surface faster, more actionable security insights
Integrate foundation models into existing product surfaces with a practical eye toward latency, cost, output quality, and evaluation
Use AI-native development tools (Cursor, Claude Code, and similar) as a core part of your workflow, setting the standard for how this team builds
Lead architecture and code reviews with a focus on production-grade reliability, security, and maintainability
Partner with product and design to translate user needs into compelling AI-driven experiences, contributing product judgment alongside technical execution
Own projects end-to-end from concept through production, including monitoring, iteration, and improvement post-launch
Stay current with the AI tooling and foundation model landscape and bring relevant advances into our roadmap and practices
Requirements
5+ years of professional software engineering experience with a strong track record shipping customer-facing product features
2+ years of hands-on experience building AI-powered applications in production, including LLM integration, prompt design, and output evaluation
Proficiency in TypeScript and strong backend engineering fundamentals
Demonstrated ability to own complex projects end-to-end across the full software development lifecycle
Experience designing and operating distributed systems in cloud environments (AWS preferred)
Hands-on experience with CI/CD, containerization (Docker, Kubernetes), and production deployment practices
Strong computer science fundamentals including systems design, data structures, and networking
Fluency with AI-native development workflows including AI-assisted coding tools as part of day-to-day engineering
Clear, direct communication with both technical and non-technical stakeholders.
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