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AI Engineer with RAG

PROLIM Global CorporationPlano, TX🇺🇸United StatesPosted Oct 6, 2026

Quick Overview

Seniority
Mid Senior
Work mode
On Site
Location
Plano, TX, United States
Posted
Yesterday
Machine LearningAgileGenerative AILLMPython

Job Description

Looking for AI Engineer - DS&ML

Location: Plano, Texas (4 days onsite)

Position Summary:

We are seeking an experienced AI Engineer to design, build, evaluate, and operationalize the technical foundation of the DS/ML AI Accelerator. The successful candidate will be responsible for hands-on generative AI engineering, retrieval-augmented generation (RAG), agent workflow design, and software engineering with a strong focus on governance, traceability, and measurable delivery impact.

Description / Essential Functions:

Governed Knowledge and RAG

  • Partner with data and business owners to onboard approved documents, data definitions, prior work, and expert knowledge into a governed knowledge base.
  • Implement retrieval pipelines, metadata, taxonomy, tagging, source citations, and quality checks that make context discoverable and trustworthy.
  • Create evaluation datasets and retrieval-quality metrics; diagnose relevance, grounding, completeness, and source-stewardship gaps.
  • Ensure generated outputs clearly distinguish retrieved facts, inferences, assumptions, and items that need subject-matter-expert confirmation.

Agentic Product Engineering

  • Design and build secure multi-agent workflows that retrieve approved context, coordinate LLM and deterministic steps, use tools safely, and produce structured, traceable outputs.
  • Define explicit agent roles, tool contracts, workflow state, validation, error handling, stop conditions, and human review points for reliable multi-agent operation.
  • Implement reusable prompt, workflow, and tool-orchestration patterns that improve repeatability, traceability, and usability for Data Scientists, ML Engineers, Business Analysts, Product Owners, and SMEs.

Evaluation, Delivery, and Governance

  • Define and instrument technical and user-centered evaluation for agent outputs, including correctness, completeness, traceability, revision effort, latency, and cost-to-serve.
  • Work in two-week agile sprints; demonstrate working increments, document technical decisions and convert pilot feedback into a prioritized backlog.
  • Apply secure development practices and meet Responsible AI, security, privacy, data-governance, and enterprise review-board requirements.
  • Partner with the future operating owner to define maintainable code, runbooks, monitoring, knowledge-source refresh practices, and an enhancement backlog.

Required Education & Experience:

  • Bachelor's degree in Computer Science, Data Science, Machine Learning, or a related field, or equivalent practical experience.
  • 8+ years of software, data science, machine learning, or AI engineering experience, including production-quality Python development and collaborative version-controlled delivery.
  • Hands-on experience building LLM-enabled applications, RAG systems, agentic workflows, or comparable AI assistants using APIs and structured tool integrations.
  • Strong Python skills and experience with modern software engineering practices: testing, code review, CI/CD, API design, documentation, and observability.
  • Experience with data retrieval/indexing concepts, embeddings, vector or hybrid search, evaluation design, and quality measurement.
  • Ability to turn ambiguous business problems into testable technical requirements and communicate tradeoffs to technical and nontechnical partners.
  • Demonstrated commitment to responsible AI, privacy, security, and data-governance practices.
  • Experience with modern LLM orchestration, agent-workflow, or developer-assistance platforms.
  • Experience designing LLM evaluation frameworks, guardrails, prompt/version management, telemetry, or model-risk controls.
  • Experience supporting ML lifecycle workflows, feature or data documentation, model development, or ML project bootstrapping.
  • Familiarity with data governance, responsible AI, access control, auditability, and human-in-the-loop review.

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