Quick Overview
Seniority
Mid Senior
Work mode
Hybrid
Location
New York, NY, United States
Posted
Yesterday
LLMPython
Job Description
Job Description:
Applied AI Engineer
What You ll Do
- Design and evolve reusable GenAI workflow primitives and services used across Institutional Securities workflows.
- Develop AI-powered assistants embedded into core Institutional Securities applications, leveraging agentic and tool-driven workflows.
- Define and guide GenAI architecture decisions, including model selection, orchestration patterns, and evaluation strategies.
- Establish and evolve LLMOps practices, including evaluation harnesses, prompt/version management, monitoring, and regression testing.
- Design and implement controls for entitlements, data security, and PII handling, including usage of open-source models in regulated environments.
- Partner with business and platform teams to drive adoption of shared GenAI capabilities across systems and workflows.
What You ll Bring
- 2+ years of hands-on experience building and operating GenAI systems in production
- 7+ years of full-stack or platform engineering experience, with strong proficiency in Python.
- Proven experience designing and operating LLM-based systems using patterns such as RAG, tool/function calling, agentic workflows, and structured outputs.
- Strong expertise in LLMOps, including evaluation frameworks, prompt/version management, regression testing, observability, and production reliability.
- Experience building AI-first document ingestion and extraction pipelines with measurable quality and accuracy.
- Experience with coding agents (Claude code, Codex, AMP, CoPilot)
- Advanced experience in retrieval systems, including multi-stage pipelines, vector search, re-ranking, metadata filtering, and evaluation metrics (e.g., recall/precision tradeoffs, MRR, NDCG).
- Practical experience debugging and stabilizing systems through real-world failure scenarios, including model regressions, prompt drift, retrieval degradation, and data quality issues.
Nice to Have: -
Experience in Fixed Income, Credit, or broader Institutional Securities workflows.
Familiarity with enterprise data governance, security models, and entitlements frameworks.
Experience designing reusable internal platforms or shared developer tooling.
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