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Senior Director, AI Platform Architecture

Thermo Fisher Scientific
Morrisville, United StatesRemotefull_timeVerifiedPosted 6 Aug 2026
💰 $278,000/yr($167,500/yr$278,000/yr)

About the role

Work Schedule

Standard (Mon-Fri)

Environmental Conditions

Office

Job Description

At PPD, Thermo Fisher’s clinical research group (CRG), we’re using digital innovation, data science, and AI to reimagine how life-changing therapies reach patients. Our teams combine deep scientific expertise with advanced analytics, automation, and digital platforms to make research smarter, faster, and more connected.

We know that innovation happens when diverse minds meet. Our Digital Science, Data, and AI professionals collaborate closely with scientists, clinicians, and operational experts to solve real-world challenges in clinical research. Alongside our partnership with Open AI, you can be part of the collaboration that will help to improve the speed and success of drug development, enabling customers to get medicines to patients faster and more cost effectively.

About the Team:
CRG Digital AI is the engine that translates our digital strategy into scalable, production-ready AI capabilities that drive measurable business impact. Operating in close partnership with Product, Data, and Engineering, the team embeds AI across our digital portfolio to accelerate clinical trial execution, enhance data-driven decision-making, and unlock differentiated value for our customers. Through a combination of centralized platforms, standards, and federated execution, CRG Digital AI enables rapid innovation while ensuring consistency, quality, and responsible AI practices.

About the Position: 
Reporting to the VP, Head of Analytics and AI, the Senior Director, AI Platform Architecture is a senior leadership role within CRG Digital responsible for defining, building, and scaling the foundational AI platform that enables the rapid development, deployment, and operation of AI-enabled products and solutions across CRG. This leader owns the end-to-end AI platform strategy, architecture, and delivery model—ensuring that AI capabilities are scalable, reusable, secure, and production-ready.

Operating at the intersection of Applied AI (AAI), Data Platforms, and Digital Engineering, this role serves as the backbone of CRG’s AI ecosystem—providing the tools, infrastructure, standards, and services required to accelerate AI innovation while maintaining governance, compliance, and operational excellence. The Director will enable both centralized and federated AI execution, empowering product and engineering teams to build AI solutions efficiently and consistently.

Key Responsibilities:
AI Platform Strategy & Ownership

  • Define and execute the AI platform strategy and roadmap, aligned to CRG Digital and AI priorities 
  • Establish the AI platform as a shared capability layer supporting all AI-enabled products and workflows 
  • Ensure alignment with enterprise architecture, data platform (MDP), and security strategies 
  • Drive a platform-first approach to AI development, enabling reuse and scalability across domains 

Platform Architecture & Engineering

  • Lead the design and development of the AI platform architecture, including:
  • Model development, training, and deployment frameworks
  • MLOps and LLMOps pipelines
  • Model serving, monitoring, and lifecycle management 
  • Integration with data platforms (e.g., Snowflake, Databricks) 
  • Ensure platform supports GenAI, agentic workflows, and traditional ML use cases 
  • Establish standards for performance, scalability, reliability, and cost efficiency 

Reusable AI Capabilities & Tooling

  • Build and scale reusable AI components, including: 
  • Model libraries and templates 
  • Prompt frameworks and orchestration tools 
  • Workflow automation and agent frameworks 
  • Enable rapid development through self-service tools and developer enablement 
  • Reduce duplication and accelerate time-to-market through standardization and reuse 

MLOps, Governance & Responsible AI Enablement

  • Establish and operationalize AI lifecycle management practices, including: 
  • Model versioning, validation, deployment, and monitoring 
  • Performance tracking and drift detection 
  • Partner with AI Risk/Governance teams to embed compliance, security, and responsible AI principles into the platform 
  • Ensure auditability, traceability, and adherence to regulatory and enterprise standards 

Federated AI Enablement

  • Provides self-service platform capabilities to AI Engineering; ensures adoption through ease-of-use and standardization
  • Enable a federated AI model, allowing domain/product teams to build AI capabilities while leveraging centralized platform standards 
  • Prov

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Company

Thermo Fisher Scientific

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