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SocureSocureNevada

AI Engineer

Staff AI Engineer designing and shipping agentic AI workflows and internal productivity tools across sales, marketing, finance, and talent teams. Partner with business stakeholders to build production-grade multi-agent systems using LLMs and orchestration platforms.

200k – 250k/yr
Remote8+ YOEML Engineering

About the role

What You'll Do

Prioritization of High-Impact Automation

  • Partner with business teams (e.g., Revenue Ops, Marketing, Finance Ops, Talent Acquisition) to catalog manual, high-frequency workflows and rank them by impact, feasibility, and urgency.

Production Agent Design & Development

  • Build multi-step, tool-augmented agent workflows that can plan, execute, observe outcomes, and iteratively improve.
  • Design and implement planner–executor and reflection-based architectures to enhance reasoning quality and task reliability.
  • Develop stateful agent systems and incorporate human-in-the-loop controls, including approval gates, fallback paths, and escalation mechanisms.

Platform Integration

  • Leverage the Agentic AI Foundations team's platform covering agent runtime, orchestration, memory, tool registry, guardrails, and observability.
  • Provide feedback that shapes platform priorities.

Innovation & Standards

  • Leverage LLMs, multi-agent frameworks, and orchestration platforms to create differentiated internal solutions.
  • Stay ahead of emerging AI technologies and regulatory frameworks to ensure Socure leads the industry in secure, compliant, and intelligent internal systems.

Technical Patterns

  • Discover reusable agent design patterns while building real workflows and contribute them back to the Agentic AI Foundations paved paths.

Operational Excellence

  • Leverage the evaluation harness and tracing substrate provided by Agentic AI Foundations for continuous performance assessment, failure-mode analysis, and optimization of speed and accuracy of specific agentic solutions.

What We're Looking For

Required

  • 8+ years of software engineering experience, with at least 2 years focused on AI/ML systems or LLM-powered applications in production.
  • Deep hands-on experience with LLM APIs and at least one agentic framework (e.g. LangGraph, CrewAI or AutoGen).
  • Strong Python skills and experience building production-grade backend services, APIs, and data pipelines.
  • Proven ability to operate in ambiguity: you've walked into an undefined problem space, figured out what to build, built it, and measured the results.
  • Experience shipping AI/automation solutions that directly impacted business operations.
  • Strong systems thinking: you design for reliability, observability, and maintainability from day one.
  • Ability to collaborate directly with non-technical business stakeholders to understand their actual workflows and translate those into technical solutions.

Preferred

  • Experience with multi-agent systems, workflow orchestration, or complex tool-use patterns in production.
  • Familiarity with evaluation frameworks (e.g., LangSmith, Weights & Biases, Arize, or custom eval pipelines) for AI systems.
  • Experience with RAG pipelines, vector databases, knowledge graphs, or memory/grounding systems.
  • Experience with real-time or streaming AI systems.
  • Familiarity with AI safety and security practices, including prompt injection prevention, hallucinations mitigation and data protection/privacy.
  • Background in a regulated industry (fintech, healthcare, government).
  • Experience with agent skill abstraction and structured tool integration via MCP (Model Context Protocol), function calling or similar protocols.
  • Experience with AWS-hosted LLM infrastructure (Bedrock, AgentCore/Strands, Lambda, SageMaker) or equivalent cloud ML services.

Skills

PythonLangGraphCrewaiAutogenLLM APIsRag PipelinesVector DatabasesAws BedrockLangsmithSageMaker

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