Artificial Intelligence Architect
Job in
Bartlett, Shelby County, Tennessee, USA
Listed on 2026-07-27
Listing for:
Appvion
Full Time
position Listed on 2026-07-27
Job specializations:
-
Software Development
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Data Engineering
Job Description & How to Apply Below
About The Role
We're hiring an AI Architect to define the technical foundation for all our AI/ML systems including architecture standards, platform decisions, and quality gates that let us deliver scalable, secure, and governed AI solutions tied directly to business outcomes. You'll sit at the intersection of engineering, data, and business strategy, designing the systems and setting the standards that accelerate AI adoption across the enterprise.
WhatYou'll Do
- Design the enterprise AI/ML architecture, including reference patterns and multi-entity / multi-tenant architectures with governed data boundaries
- Evaluate and select AI platforms, frameworks, and cloud services
- Establish technical standards for model development, testing, and deployment
- Design agentic search and retrieval systems for enterprise knowledge grounding
- Review and approve architecture for all AI use cases before they reach production
- Define data architecture requirements for ML pipelines
- Lead build vs. buy evaluations for AI tooling
- Mentor technical team members and drive engineering excellence
- Stay current on AI/ML technology trends and assess their relevance to our roadmap
- 8+ years in software or data architecture, with 4+ years focused on ML systems
- Deep expertise in cloud platforms (AWS, Azure, or GCP) and their ML services
- Proven experience designing production ML pipelines at enterprise scale
- Strong understanding of MLOps, model monitoring, and deployment patterns
- Experience with both traditional ML and modern LLM/GenAI architectures
- Familiarity with core enterprise infrastructure architecture
- Languages:
Python, SQL, and Scala for ML and data engineering - ML frameworks:
PyTorch, Tensor Flow, scikit-learn, and Hugging Face - MLOps:
Docker, Kubernetes, CI/CD, MLflow, and model registries - Cloud & data: AWS, Azure, GCP, Spark, Airflow, and feature stores
- LLM, GenAI & agentic search: RAG, fine-tuning, prompt engineering, vector databases, query planning, tool use, retrieval orchestration, and multi-step reasoning
- Responsible AI: governance, model monitoring, and security by design
- Solution mindset: design thinking, trade-off analysis, and pragmatic delivery
M2SP
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