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Enterprise AI Architect

Job in Eden Prairie, Hennepin County, Minnesota, 55344, USA
Listing for: Tata Consultancy Services
Full Time position
Listed on 2026-08-01
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Software Architect, DevOps
Salary/Wage Range or Industry Benchmark: 180000 - 200000 USD Yearly USD 180000.00 200000.00 YEAR
Job Description & How to Apply Below

Job Description

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
  • 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.
  • 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.
  • 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.
  • 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.
  • 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, software quality, and delivery velocity.
  • AI-Assisted Software Engineering Toolchain
  • E…
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