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AI Solution Architect, Vice President – Corporate Functions Technology

Job in Princeton, Mercer County, New Jersey, 08543, USA
Listing for: State Street
Full Time position
Listed on 2026-06-18
Job specializations:
  • IT/Tech
    AI Engineer (Applied/Software)
Salary/Wage Range or Industry Benchmark: 150000 - 200000 USD Yearly USD 150000.00 200000.00 YEAR
Job Description & How to Apply Below

Who We Are Looking For

We are seeking an AI Solution Architect, Vice President to serve as a senior technology leader responsible for shaping and driving the AI strategy for our Internal Audit function. In this role, you will provide architectural leadership to design, build, and operate production‑grade AI systems that deliver conversational, predictive, and generative capabilities at enterprise scale.

This is a hands‑on architectural leadership role requiring deep expertise in Generative AI, large language models (LLMs), retrieval‑augmented generation (RAG), AI orchestration frameworks, and enterprise integration patterns. You will partner closely with Internal Audit SMEs, data engineering, security, and infrastructure teams to ensure AI solutions are explainable, secure, compliant, and operationally resilient, while materially improving audit quality, productivity, and insight generation.

What

You Will Be Responsible For AI Architecture & Platform Strategy
  • Lead the end‑to‑end architecture for AI‑enabled platforms supporting Internal Audit, integrating LLMs, machine learning models, enterprise data platforms, and core systems
  • Define scalable, reusable architectural patterns for conversational assistants, generative insights, predictive analytics, and continuous auditing use cases
  • Act as the technical authority for AI architecture within Internal Audit Technology, setting standards and guiding architectural decisions across initiatives
AI Engineering & Orchestration
  • Lead the design and implementation of AI orchestration frameworks to enable scalable, multi‑step reasoning and agent‑based workflows
  • Architect solutions using frameworks such as Lang Chain (or equivalent) and cloud‑native capabilities (e.g., managed AI/agent services)
  • Design workflows incorporating:
    • Retrieval‑augmented generation (RAG) across structured and unstructured data
    • Guardrails, validation layers, and hallucination‑mitigation techniques
  • Define and own model selection, evaluation, and benchmarking frameworks, balancing performance, cost, latency, explainability, and risk
Build & Production Operations
  • Lead delivery of production‑ready AI systems, including model deployment, APIs, orchestration pipelines, and enterprise integrations
  • Establish and mature LLMOps / MLOps practices, including versioning, monitoring, evaluation, logging, rollback strategies, and cost controls
  • Ensure platforms meet enterprise standards for availability, scalability, performance, resilience, and reliability
Governance, Risk & Controls
  • Embed AI governance and model risk management into system design
  • Implement safeguards for data privacy, security, bias detection, explainability, and auditability
  • Partner with Internal Audit, Risk, Compliance, and Legal teams to align solutions with regulatory and internal policy requirements
Use Case Enablement & Innovation
  • Translate audit and risk challenges into high‑impact AI use cases (e.g., control testing automation, issue identification, narrative generation, continuous auditing)
  • Guide experimentation and proof‑of‑concepts while ensuring a clear path to production
  • Stay current on emerging AI technologies and recommend pragmatic adoption strategies
What We Value
  • End‑to‑end AI architecture and solution design for enterprise, production‑grade systems
  • Hands‑on expertise with Generative AI, including LLMs, prompt engineering, embeddings, RAG, and agent‑based workflows
  • AI orchestration and workflow design skills for multi‑step reasoning, validation, and automation
  • Strong engineering and operational skills to deliver scalable, reliable platforms with robust LLMOps/MLOps practices
  • Responsible AI and governance skills, including model risk management, security, privacy, explainability, and auditability
  • Data engineering and integration skills, leveraging enterprise data platforms, APIs, and distributed systems
  • Analytical problem‑solving skills to translate audit and risk challenges into high‑impact AI use cases
  • Stakeholder partnership and influence skills across audit, risk, security, and technology teams
  • Clear technical communication and mentoring skills for technical and non‑technical audiences
  • Continuous learning mindset to stay current with…
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