Principal Scientist, SOP & Workflow Automation Champion, AI for Drug Discovery (AIDD
Listed on 2026-08-08
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Software Development
AI Engineer (Applied/Software), Data Scientist, Machine Learning/ ML Engineer, Data Engineering
The Position
A healthier future. It’s what drives us to innovate. To continuously advance science and ensure everyone has access to the healthcare they need today and for generations to come. Creating a world where we all have more time with the people we love. That’s what makes us Roche.
Advances in AI, data, and computational sciences are transforming drug discovery and development. Roche’s Research and Early Development organisations at Genentech (gRED) and Pharma (pRED) have demonstrated how these technologies accelerate R&D, leveraging data and novel computational models to drive impact. Seamless data sharing and access to models across gRED and pRED are essential to maximising these opportunities. The new Computational Sciences Center of Excellence (CoE) is a strategic, unified group whose goal is to harness the transformative power of data and Artificial Intelligence (AI) to assist our scientists in both pRED and gRED to deliver more innovative and transformative medicines for patients worldwide.
Opportunity
At Roche's AI for Drug Discovery (AIDD) group within the Computational Sciences Center of Excellence, we are architecting a vision for end-to-end computational drug discovery. Today, drug discovery workflows are fragmented—different models for different modalities, disconnected processes across teams, manual handoffs between discovery and development. We are building a unified, modular system where machine learning methods integrate seamlessly into executable, agentic workflows that empower scientists across our organization to discover better medicines faster.
Inthis role, you will:
Design computational workflow architecture that operationalizes modular ML components into scalable, reproducible, and agentic-ready systems
Lead the development and standardization of SOPs for model integration, data pipelines, and workflow execution across gRED and pRED
Partner strategically with Roche's platform engineering teams to implement workflows at scale
Architect data integration with Roche's centralized data infrastructure (DDC), ensuring seamless model-data-workflow loops
Collaborate with the modeling team to translate research-stage models into production-ready components with clear interfaces, performance benchmarks, and failure modes
Navigate complex stakeholder environments, including portfolio teams, platform organizations, and technology development groups, to align on standards and drive adoption
Lead and mentor engineers and scientists on workflow design, automation best practices, and computational architecture
Technical Foundation
PhD in Computer Science, Computational Biology, Bioinformatics, or related field, or equivalent advanced experience (8+ years building computational systems)
Deep expertise in workflow orchestration, data pipeline design, and software architecture (not just machine learning)
Proven experience designing systems that integrate heterogeneous data sources, models, and processes at scale
Strong proficiency in Python and modern ML frameworks (PyTorch, Tensor Flow, JAX); familiarity with workflow tools (Nextflow, Snakemake, Airflow, or similar)
Understanding of software engineering practices: version control, testing, documentation, CI/CD pipelines
Experience in Life Sciences / Drug Discovery
Demonstrated experience working at the intersection of computational methods and experimental biology
Understanding of drug discovery workflows: what scientists actually need, where handoffs break down, how to design for usability
Track record of translating research code into production systems that real teams use
Experience working across technical and non-technical stakeholders (biology, chemistry, engineering)
Leadership & Collaboration
Proven ability to lead complex, cross-functional initiatives involving multiple teams and organizations
Track record of driving adoption of new standards, tools, or processes in larger organizations
Strong communication skills: can explain complex technical concepts to diverse audiences and build consensus
First-author publications or equivalent evidence of research contributions
Strategic Thinking
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