The Associate Engineering Fellow, Process Knowledge & Data Architecture will lead the design and implementation of a scalable, integrated data and knowledge architecture to support process development across Synthetic Molecule Process Development (SMPD). This role sits at the intersection of process science, data engineering, and digital strategy, enabling model-informed development and AI-driven workflows by transforming fragmented experimental and manufacturing data into structured, reusable knowledge assets. Working across matrix teams, the individual will define and implement SMPD’s data and knowledge strategy, enable data-driven decision-making, model development, and digital workflows, transforming fragmented datasets into a unified, high-value knowledge layer that accelerates development, improves process understanding, and supports lifecycle management.
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Job Type
Full-time
Career Level
Senior
Education Level
Ph.D. or professional degree