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AI Architect

Job in Eden Prairie, Hennepin County, Minnesota, 55344, USA
Listing for: Siri InfoSolutions Inc
Full Time position
Listed on 2026-09-03
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Software Architect, DevOps
Salary/Wage Range or Industry Benchmark: 150000 - 190000 USD Yearly USD 150000.00 190000.00 YEAR
Job Description & How to Apply Below

Role:
Enterprise AI Architect
Location
- Eden Prairie, MN
Hire Type:
Full time

Must Have Technical/Functional Skills

Enterprise AI Architect with Full Development Experience (FDE), possessing deep expertise in architecture, hands-on software engineering, AI-assisted development, Agentic AI frameworks, Dev Sec Ops , platform engineering, cloud-native solutions, and enterprise data platforms. Proven ability to architect, develop, secure, automate, and operationalize large-scale AI and software solutions while driving engineering excellence through Git Hub Copilot, Claude Code, Codex, Databricks Genie, Snowflake Cortex, and modern AI-powered software delivery practices.

Key Responsibilities 1. Enterprise AI & Solution Architecture

Lead the architecture, design, and implementation of enterprise-scale AI solutions using modern architectural patterns, clean architecture principles, domain-driven design (DDD), and cloud-native technologies.

Define enterprise AI reference architectures, engineering standards, development frameworks, and implementation guardrails to ensure scalability, maintainability, security, and operational excellence.

Drive adoption of Agentic AI, AI-powered software engineering, and intelligent automation across the software delivery lifecycle.

Architect solutions with built-in observability, resilience, governance, security, and compliance from inception through production deployment.

Partner with business, engineering, security, and platform teams to align AI capabilities with enterprise technology strategy and business outcomes.

2. Full Development Experience (FDE) and Engineering Excellence

Demonstrate hands-on full-stack development experience spanning frontend, backend, APIs, data platforms, cloud services, and AI-enabled applications.

Lead development teams in implementing modern engineering practices including test-driven development (TDD), CI/CD automation, code quality enforcement, and platform engineering standards.

Define and enforce software engineering best practices with mandatory automated test coverage, code reviews, architecture reviews, and deployment quality controls.

Drive modernization of legacy applications through refactoring, cloud migration, microservices transformation, and AI-assisted development methodologies.

Establish engineering productivity frameworks leveraging AI coding assistants, automated development workflows, and intelligent code generation.

3. Secure-by-Design AI Platforms

Architect secure AI and software platforms aligned with OWASP standards, Zero Trust principles, and enterprise cybersecurity requirements.

Implement enterprise controls for HIPAA, PHI, PII, GDPR, and regulatory compliance across data, applications, and AI workloads.

Integrate security validation throughout the development lifecycle using SAST, SCA, container scanning, secrets management, and policy-as-code frameworks.

Design auditable AI systems with governance, lineage, traceability, access controls, and compliance monitoring capabilities.

4. AI Engineering, Dev Sec Ops , and Delivery Automation

Design and implement AI Engineering Harnesses supporting build validation, quality gates, security scanning, automated testing, and deployment automation.

Establish enterprise Dev Sec Ops  frameworks integrating:

  • Static Application Security Testing (SAST)
  • Software Composition Analysis (SCA)
  • Container Security Scanning
  • Dependency Management
  • Policy Compliance Validation
  • Infrastructure-as-Code Governance

Lead implementation of performance benchmarking frameworks for APIs, AI models, applications, and distributed platforms.

Build highly automated CI/CD pipelines enabling secure, reliable, and repeatable software delivery.

5. Agentic AI Development Frameworks

Design and operationalize multi-agent software engineering ecosystems to accelerate architecture, development, testing, security review, and governance activities.

Utilize specialized AI agents including:

  • Enterprise Architect Agent
  • Solution Architect Agent
  • Data Architect Agent
  • Backend Engineering Agent
  • Test Engineering Agent
  • Security Review Agent
  • Pull Request Review Agent

Drive adoption of agent-based development workflows to improve engineering productivity,…

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