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Senior Solutions Architect / Principal AI Solutions Architect

Recruitment.aiIrving, TX🇺🇸United StatesPosted Sep 29, 2026

Quick Overview

Seniority
Leader
Work mode
On Site
Location
Irving, TX, United States
Posted
2 days ago
MLOpsHIPAALLM

Job Description

Senior Solutions Architect / Principal AI Solutions Architect

Minneapolis, MN | Chicago, IL | Irving, TX – Onsite

Role Overview

We are seeking a Senior Solutions Architect / Principal AI Solutions Architect with strong experience in enterprise architecture, AI/ML platforms, and production-grade LLM/agentic systems. The ideal candidate will drive scalable AI architecture while addressing reliability, governance, security, and regulated-data requirements.

Key Responsibilities

  • Architect and deliver LLM orchestration and agentic AI systems, including multi-agent workflows, context management, and tool connectivity.
  • Design AI/ML platform infrastructure, including cloud AI integration, LLMOps/MLOps, deployment pipelines, observability, and runtime monitoring.
  • Establish LLM evaluation frameworks, including LLM-as-judge calibration and regression testing for probabilistic systems.
  • Evaluate architectural tradeoffs, failure modes, system behavior, and downstream impacts.
  • Develop architecture decision records, technical standards, and reusable platform patterns.
  • Partner with engineering, security, compliance, and business teams to drive enterprise AI adoption.
  • Design architectures supporting data governance, privacy, audit readiness, and regulated environments.

Required Qualifications

  • 12+ years in enterprise software/platform architecture, AI/ML systems, data architecture, or enterprise platform delivery.
  • 2+ years of hands-on production experience with LLM orchestration and agentic AI systems.
  • Strong systems-thinking and enterprise architecture capabilities.
  • Experience with AI/ML platforms, LLMOps/MLOps, cloud AI services, CI/CD, observability, and monitoring.
  • Experience with LLM evaluation, LLM-as-judge, calibration, and regression pipelines.
  • Strong written and verbal communication skills with experience creating architecture and technical documentation.
  • Experience with regulated data environments, governance, privacy, and audit requirements.

Preferred Experience

  • Healthcare/clinical data environments, including HIPAA and PHI.
  • Enterprise AI governance, agent registries, model provenance, AIBOM, or AI governance frameworks.
  • Building reusable platform components, shared libraries, templates, and developer enablement tools.
  • Experience driving adoption through technical leadership, product quality, and cross-functional influence.

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