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Lead AI Engineer - Observability

Job in Northern, Floyd County, Kentucky, USA
Listing for: U.S. Bank
Full Time position
Listed on 2026-09-05
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Software Architect, Cloud Engineer - Software, DevOps
Salary/Wage Range or Industry Benchmark: 139000 - 164000 USD Yearly USD 139000.00 164000.00 YEAR
Job Description & How to Apply Below
Location: Northern

Job Summary

The Lead Engineer (Generative AI) is a senior technical role responsible for designing, developing, and operationalizing enterprise-scale Generative AI (GenAI) solutions. This position combines deep hands-on expertise in Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), and agentic AI architectures with strong technical leadership to deliver secure, scalable, and resilient AI systems. The role partners across engineering, product, and business teams to translate complex requirements into production-ready AI capabilities aligned with enterprise standards for security, risk, and responsible AI.

Key Responsibilities
  • 1. GenAI Solution Engineering Design, develop, and deploy GenAI solutions leveraging:
    Large Language Models (LLMs) Retrieval-Augmented Generation (RAG) architectures Prompt engineering techniques Agentic AI workflows and orchestration Build intelligent systems using frameworks such as Lang Chain, Lang Graph, AWS Bedrock, and Microsoft Foundry Agent Service Evaluate emerging tools and frameworks to continuously improve solution quality and innovation
  • 2. GenAIOps & Lifecycle Management Lead the end-to-end lifecycle of GenAI solutions, including:
    Solution architecture and engineering Integration with enterprise systems Secure deployment and release management Monitoring, observability, and continuous optimization Implement GenAIOps best practices to ensure scalability, reliability, and cost efficiency Establish logging, evaluation, and feedback mechanisms for production AI systems
  • 3. Cloud, Platform & Scalability Engineering Architect and deploy GenAI applications across cloud environments (Azure and AWS) Design distributed systems capable of supporting high-throughput, low-latency AI workloads Leverage modern infrastructure practices:
    Containerization (Docker) Orchestration (Kubernetes) Infrastructure as Code (Terraform, ARM/Bicep) Ensure high availability, performance, and enterprise-grade security
  • 4. Software Engineering & Architecture Develop scalable, maintainable applications using Python and microservices-based architectures Apply secure coding standards and robust data handling practices for regulated environments Build and manage CI/CD pipelines supporting automated testing, deployment, and release management Enforce engineering best practices including code reviews, testing, and documentation
  • 5. Technical Leadership & Influence Provide architectural leadership and guidance across GenAI initiatives Drive critical design decisions for large-scale, complex AI solutions Mentor and coach senior engineers and development teams Translate business requirements into scalable, secure, and resilient technical solutions Partner with stakeholders across product, business, risk, and security functions
Basic Qualifications

Bachelor’s degree, or equivalent work experience Six to eight years of relevant experience Experience Should Include Bachelor’s or Master’s degree in Computer Science, Engineering, or related field 8+ years of experience in software engineering, platform engineering, or AI/ML solutions 2+ years hands‑on experience with GenAI technologies, including LLMs and RAG architectures and vector databases Strong knowledge of agentic AI concepts and frameworks (e.g., Lang Chain, Lang Graph) Experience with cloud platforms (Azure and/or AWS) Deep understanding of distributed systems and scalable architecture patterns Proficiency in Python and microservices-based development Experience with Docker, Kubernetes, and Infrastructure as Code tools Demonstrated technical leadership and mentoring experience

Preferred Qualifications

Experience implementing GenAI solutions in enterprise or regulated environments Familiarity with observability frameworks and AI lifecycle tooling Understanding of AI governance, security, and compliance requirements Experience contributing to or working with AI/ML or GenAI frameworks Background in financial services or other highly regulated industries

Core Competencies
  • Technical Depth & Innovation Strong expertise in GenAI architectures and evolving AI technologies Ability to balance experimentation with enterprise-grade reliability
  • Architect…
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