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Meta

Director, AI Manufacturing Enablement

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What they do

A Director of Manufacturing oversees management of all areas of manufacturing to produce products and direct activities so that approved products are manufactured on schedule and within quality standards and cost objectives.

$191,971 / year median in California

+6% projected growth

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Job Description

Meta's Manufacturing Engineering & Operations (MEO) organization is responsible for bringing Reality Labs' most ambitious hardware products to life at scale. Across our functions — Manufacturing Operations, DFx, Manufacturing Test Engineering, and Quality — hundreds of workflows involve data analysis, decision-making, documentation, and cross-functional coordination that are ripe for AI-driven transformation. We are seeking a Director, AI Manufacturing Enablement to lead a dedicated team that systematically identifies, prioritizes, and deploys AI and automation solutions across the MEO organization and its adjacent partners. This leader will operate at the intersection of manufacturing domain expertise and applied AI, delivering measurable productivity gains, quality improvements, and workflow automation across real production environments. This is a founding leadership role reporting to the Director of MEO. You will build the team, define the AI strategy for manufacturing, and serve as the connective tissue between Meta's broad AI capabilities and the practical realities of hardware manufacturing.
Qualifications:
12+ years of experience across manufacturing/operations and applied AI/ML/automation, with demonstrated depth in at least one and working fluency in the other, including at least 5 years in a leadership role Experience deploying AI/ML solutions in production environments, or diverse leadership experience leading complex operations through changes involving the introduction of technology to improve productivity and quality of decision making Understanding of manufacturing workflows — assembly, test, quality, supply chain — and where AI adds genuine value Experience building and leading technical teams that ship products/tools iteratively Experience operating in ambiguity — defining the problem space, not just solving well-scoped problems Experience in process transformation and organizational change management — driving adoption of new tools and ways of working across engineering teams Bachelor's degree in Computer Science, Industrial Engineering, Manufacturing Engineering, or a related technical field, or equivalent practical experience demonstrated through a track record of leading process transformation, automation, or applied technology deployment in a manufacturing or operations environment Experience with manufacturing data systems (MES, SPC, historian databases) and the data quality challenges they present Experience in consumer electronics or precision hardware manufacturing environments Familiarity with large-scale AI/ML platforms or similar large-scale AI platforms Hands-on familiarity with LLMs, computer vision, time-series anomaly detection, or reinforcement learning in industrial settings Track record of building new functions or teams from zero — particularly 'AI for X' teams embedded in non-AI organizations

Benefits

  • Dental Insurance