Solutions Architecture Lead (Apps Dev Manager)

Expert Technology Services

  • Phoenix, AZ
  • 5 days ago

    Highlights

    Enterprise & Cloud Architecture: Deep expertise in distributed systems, microservices, API-first design, and major cloud platforms (Salesforce, Azure, GCP, including AI/ML stacks). - Cross-Functional Leadership: Influence and coordinate across multiple teams (product, legal, security, engineering) to ensure successful AI service deployment.

    Numbers & Facts

    LocationPhoenix, AZ

    Description

    Job Summary (List Format) Solution Architecture Manager

    - Location & Schedule: Hybrid (4 days onsite per week), local candidates only.
    - Role Overview: Serve as a strategic technical leader, bridging enterprise architecture with advanced AI/ML technologies.
    - System Oversight: Lead the development of modern, scalable software systems with AI as a core component.
    - Enterprise & Cloud Architecture: Deep expertise in distributed systems, microservices, API-first design, and major cloud platforms (Salesforce, Azure, GCP, including AI/ML stacks).
    - AI/ML Ecosystems: Strong knowledge of AI lifecycle, LLMs/SLMs, NLP, computer vision, vector databases, RAG architectures.
    - Data Engineering & MLOps: Understanding of CI/CD for ML, data pipelines, data lakes/warehouses, and model lifecycle management.
    - Security, Privacy, & Ethics: Knowledge of data privacy regulations (e.g., CCPA), AI compliance (NIST AI RMF, EU AI Act), and methods to mitigate AI bias and risks.
    - Architecture Frameworks: Familiarity with frameworks like TOGAF, Zachman, and Agile/Scrum methodologies.
    - Cloud Cost Management: Understanding of FinOps, cost structures of AI compute (GPU/TPU), and API token-based pricing.
    - Business-Technical Translation: Ability to convert business needs into effective AI and technical solutions.
    - Executive Communication: Ability to clearly explain complex AI concepts and ROI to C-level executives and the board.
    - Risk Management: Proactively anticipate and mitigate technical, security, and ethical risks in AI deployments.
    - Adaptability: Stay current with rapid AI advancements and integrate new research into enterprise systems.
    - Cross-Functional Leadership: Influence and coordinate across multiple teams (product, legal, security, engineering) to ensure successful AI service deployment.
    - System Design & Integration: Design scalable, secure architectures that embed AI into enterprise and legacy systems.
    - Technical Evaluation: Assess AI vendors, open-source models, and APIs to guide build vs. buy decisions.
    - Team Leadership: Manage, mentor, and evaluate technical teams (cloud architects, ML engineers, data scientists, developers).
    - Strategic Roadmapping: Develop and maintain a long-term AI/architecture roadmap aligned with business goals.
    - Budget & Vendor Management: Negotiate contracts, manage vendors, and optimize budgets for software and projects.
    - Technical Skills: Proficient in high-level programming languages (Python, SQL, Java, Go) for architecture review and complex troubleshooting.
    - Required Education: Bachelor s degree in Computer Science or Computer Engineering.

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