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Director, AI Engineering

Job in Princeton, Mercer County, New Jersey, 08543, USA
Listing for: ACADIA Pharmaceuticals Inc.
Full Time position
Listed on 2026-09-04
Job specializations:
  • Software Development
    AI Engineer (Applied/Software)
Salary/Wage Range or Industry Benchmark: 201800 - 252300 USD Yearly USD 201800.00 252300.00 YEAR
Job Description & How to Apply Below

This hybrid position requires onsite attendance three days per week at one of our office locations in San Diego, CA, South San Francisco, CA, or Princeton, N

Position Summary

The Director, AI Engineering is a strategic technology leader responsible for shaping and advancing the enterprise AI application and agent ecosystem. This role owns the AI platform and agent framework layer that enables scalable, secure, and impactful AI-powered solutions across the organization.

The successful candidate will drive the development of enterprise-grade capabilities including reusable agent templates, multi-agent orchestration, an internal agent publishing platform, self-service RAG solutions, tool and skill registries, prompt management, and evaluation and output validation frameworks. This leader will balance deep technical expertise with a passion for creating intuitive, low-code experiences that empower business users to independently build and deploy AI solutions.

Partnering closely with IT, Cybersecurity, Enterprise Architecture, and business stakeholders, the Director will ensure the AI platform remains secure, governed, scalable, and aligned with organizational objectives while delivering measurable business value and accelerating AI adoption across the enterprise.

Primary Responsibilities
  • Architect and maintain the enterprise agent platform - the system through which agents are developed, published, versioned, and coordinated, using frameworks such as Lang Graph, CrewAI, Anthropic Agents SDK, and OpenAI Agents SDK.
  • Engineer multi-agent coordination patterns enabling agents with distinct roles, data access, and functional scope to collaborate reliably on complex, multi-step business workflows.
  • Design and implement reusable agent templates, composable orchestration primitives, and agentic memory systems (short-term, long-term, episodic) that development teams and non-engineers can configure and deploy.
  • Build human-in-the-loop (HITL) escalation workflows and clearly defined agent action boundaries to ensure appropriate human oversight at high-risk decision points.
  • Lead the design and delivery of a self-service RAG builder, including ingestion pipelines, chunking, embedding, vector store integration, hybrid retrieval, and reranking surfaced through a low-code interface accessible to non-technical users.
  • Build and operate an enterprise tool and skill registry: a versioned catalog of APIs, functions, MCP servers, and data connectors that agents can securely discover and invoke, with schema contracts, authentication, and access controls.
  • Establish and manage the enterprise prompt management system with versioning, governance workflows, A/B testing, rollback capabilities, and domain-specific prompt libraries for commercial, medical, and R&D functions.
  • Own the evaluation and benchmarking methodology for agentic systems. Design rigorous, quantitative eval suites covering accuracy, faithfulness, groundedness, task completion, latency, cost, and safety. Implement automated regression detection in production.
  • Design and implement multi-layer guardrail frameworks including input/output validation, content moderation, hallucination detection, policy enforcement, and agent permission scoping aligned with AI governance policy and regulatory requirements.
  • Apply product thinking and user-centered design to platform tooling; track adoption metrics, gather user feedback, and iterate to reduce friction for non-engineer stakeholders across Commercial, Medical Affairs, R&D, and Corporate Functions.
  • Contribute to the enterprise AI strategy and portfolio roadmap; participate actively in the AI Governance Council providing expertise on agentic risk, safety, and platform governance.
  • Ensure all engineered solutions comply with global AI regulations, ethical AI standards, data privacy requirements (HIPAA, GDPR), applicable GxP processes, and enterprise security standards.
  • Mentor engineers and foster a culture of rigorous evaluation, responsible experimentation, and continuous improvement across the AI team.
  • Other responsibilities as assigned.
Education/Experience/Skills
  • Bachelor’s degree in Computer Science, Software Engineering, Machine…
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