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Patterns Hiring, Inc.

Addison / Global

AI Platform Engineer

Job Description

Job Title - AI Platform Engineer

Location - Addison, TX

Role - Contract

Responsibilities: Key Responsibilities

Platform Architecture: Design and develop a "Model-as-a-Service" platform that allows non-experts to use drag-and-drop components to build AI solutions.

RAG-as-a-Service: Build and optimize end-to-end Retrieval-Augmented Generation (RAG) pipelines, including sophisticated chunking strategies and vector database management.

Tooling & Libraries: Develop and maintain MCP (Model Control Protocol) libraries, clients, and servers to connect various data sources to the AI engine.

Infrastructure Management: Help manage and optimize one of the largest on-premise GPU farms in the U.S. banking sector (500+ Nvidia nodes).

Agentic AI: Build a repository for Agentic AI where users can select existing agents or build custom ones for specialized tasks.

CI/CD Integration: Integrate AI deployment pipelines with enterprise-level CI/CD tools like Jenkins and Ansible.

Compliance & Guardrails: Implement corporate-level guardrails and work within Model Risk Management (MRM) frameworks to ensure all AI deployments are secure and compliant.

Required Technical Skills : Expert Python: Deep, hands-on knowledge is mandatory.

Data Engineering: Extensive experience in massive data ingestion and processing.

RAG Expertise: Deep understanding of vector databases, inferencing, and advanced chunking strategies.

Platform Engineering: Proven experience building tools/platforms that other developers or business units use.

Infrastructure Knowledge: Experience mimicking cloud capabilities (AWS/Azure) within a strictly on-premise environment.

DevOps: Familiarity with Jenkins, Ansible, and automated deployment pipelines.

Experience & Qualifications : Seniority: This is a senior-level role. We are looking for someone with a proven track record of building production-grade platforms (10-15+ years)

Industry Knowledge: You must stay current with the "latest and greatest" in AI (e.g., rag-less inferencing, agentic frameworks).

Problem Solver: Must be able to take a use case from a business unit and translate it into a scalable platform service.

Experience with Scale: Experience working with large-scale GPU farms and high-volume data environments is highly preferred.

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