AI Engineer
Listed on 2026-08-22
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Software Development
AI Engineer (Applied/Software), Data Engineering, Machine Learning/ ML Engineer
Role
The AI Engineer holds primary responsibility for architecting and implementing FSCU’s on-premises AI platform from scratch — including LLM infrastructure, retrieval-augmented generation (RAG), agentic search, and related intelligent automation systems. This is a foundational role: there is no pre-existing AI infrastructure or precedent at FSCU, and the work performed in this position will establish the technical foundation upon which AI at FSCU is built for years to come.
The role works closely with Data Engineering to ensure AI systems are supported by clean, governed data pipelines, and partners directly with the VP of Software Development to ensure all AI deployments meet NCUA and Texas Credit Union Department regulatory expectations around data sovereignty, auditability, and PII protection.
- Architects and implements FSCU’s on-premises AI platform from the ground up, leveraging newly acquired on-prem GPU hardware (H200-based) to deliver enterprise AI capability with no cloud dependency. Designs and builds LLM-based applications, including RAG pipelines, agentic search, and vector retrieval systems, using self-hosted frameworks such as Haystack, Llama Index, Ollama, or comparable tools.
- Establishes foundational standards, patterns, and best practices for AI development at FSCU, since none currently exist. Sets the technical and architectural precedent for how AI is built, deployed, secured, and governed going forward, including PII and data-governance safeguards (redaction, access controls, audit logging) sufficient to meet NCUA examination standards.
- Deploys, tunes, and monitors models on on-prem GPU infrastructure, optimizing for throughput, latency, and resource utilization across shared workloads. Collaborates with Data Engineering to define data contracts, feature pipelines, and integration points between the MS SQL Server/DB2 data warehouse and AI systems.
- Evaluates and prototypes emerging AI tooling, both open-source and commercial, for fit within a strict on-premises, no-cloud-egress environment. Develops internal tools and APIs that expose AI capabilities to other departments, such as virtual agent support, document processing, and ticket triage.
- Performs other job related duties as assigned.
Experience
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Three years or more of experience building and deploying machine learning or LLM-based applications in production, including experience architecting systems rather than solely implementing within existing ones.
Education
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Equivalent to a college degree, in the field of Computer Science (BS or BA in a relevant field), or related professional work experience.
Interpersonal Skills
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Work involves regular collaboration with Data Engineering, departmental leadership, and end users across the credit union. Ability to clearly explain complex technical concepts to non-technical stakeholders…
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