AI Lead
Listed on 2026-08-27
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Software Development
AI Engineer (Applied/Software), Software Architect
Job Family: IT Architecture/Cloud
Travel Required:
Up to 10%
Clearance Required:
Active Public Trust
The AI Lead will set the technical direction and lead the delivery of secure, scalable, and responsible artificial intelligence and machine learning solutions in federal and other highly regulated environments. This role will also support modernization initiatives by helping integrate AI capabilities into evolving platforms, applications, and business processes while maintaining continuity with legacy systems. The role combines hands‑on architecture expertise, strategic leadership, and cross‑functional collaboration to translate mission needs into production‑ready capabilities.
The AI Lead will guide multidisciplinary teams, establish AI engineering and governance standards, and ensure solutions are reliable, auditable, cost‑effective, and aligned with organizational priorities, security requirements, and responsible AI practices.
- Define the AI strategy, technical roadmap, reference architectures, and engineering standards that connect mission and business priorities to measurable outcomes.
- Lead the end‑to‑end design and delivery of AI/ML and generative AI solutions, including data ingestion, model selection and development, retrieval‑augmented generation, agentic workflows, deployment, monitoring, and sustainment.
- Architect secure, scalable solutions across cloud and hybrid environments, applying sound software engineering, API, distributed systems, data, and platform design practices.
- Establish and oversee MLOps and LLMOps practices for automated testing, evaluation, release management, observability, traceability, reproducibility, and operational resilience.
- Evaluate models, tools, and vendors; guide build‑versus‑buy decisions; and lead proofs of concept that responsibly translate emerging technologies into enterprise capabilities.
- Implement responsible AI and model risk management practices, including documentation, validation, explainability, fairness, privacy, human oversight, bias mitigation, change control, and periodic review.
- Ensure solutions align with applicable security, accessibility, records management, privacy, and compliance requirements, including FedRAMP, FISMA, NIST frameworks, and agency‑specific policies where applicable.
- Lead and mentor cross‑functional teams of data scientists, ML engineers, data engineers, software engineers, and platform specialists; conduct design reviews and promote technical excellence.
- Partner with executives, product owners, program leaders, security, legal, privacy, and operations teams to communicate options, risks, tradeoffs, and recommendations in clear business terms.
- Monitor solution quality, model performance, drift, latency, reliability, adoption, and cost; use feedback and metrics to drive continuous improvement.
- Support modernization initiatives by identifying opportunities to embed AI into new and legacy applications, aligning solutions with target architectures, and coordinating phased adoption to reduce delivery and operational risk.
- Bachelor’s degree in Computer Science, Data Science, Engineering, Artificial Intelligence, or a related field.
- TEN (10) years of experience with Six (6) or more years of experience in software engineering, AI/ML, cloud architecture, enterprise technology delivery, or related technical roles; a relevant master’s degree may substitute for up to two years of professional experience.
- Three (3) or more years leading AI/ML teams, technical work streams, or large‑scale initiatives in complex, regulated, or mission‑driven environments.
- Demonstrated experience architecting and delivering production AI/ML solutions across the full lifecycle, from discovery and prototyping through deployment, monitoring, and sustainment.
- Strong knowledge of generative AI, large language models, retrieval‑augmented generation, prompt engineering, model evaluation, vector search, and agentic application patterns.
- Experience with AWS cloud‑native architectures and services such as Amazon Bedrock, Sage Maker AI, Lambda, ECS or Fargate, S3, API Gateway, and event‑driven services.
- Knowledge of MLOps…
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