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We are seeking a Principal Engineer to lead strategic and scenario planning for Advanced Packaging Central Planning. This role owns end-to-end scenario development across the Business Planning (BP) horizon and long-range planning horizon, translating product roadmaps, market signals, and technology/ramp constraints into optimized capacity and loading strategies. You will drive capital efficiency by evaluating tradeoffs across cost, capex timing, ramp agility, inventory strategy, and market share/bit growth, and by delivering clear, decision-ready recommendations to senior leadership.
Lead and govern scenario studies across business plan and long-range horizons, including scenario baselines, assumptions management, and change control to ensure traceability and alignment to business goals.
Develop and run scenario optimization to define optimum loading plans that balance output and market share with qualification milestones, ramp readiness, and capacity thresholds.
Quantify capital impacts: develop and maintain Cost of Transition (CoT) assess gaps between budget vs. actuals explain cause-effect relationships driving tooling and capital deltas.
Own long-range space and footprint demand planning, translating product/technology roadmaps into expansion pathways (site and tooling mix, infrastructure readiness, and ramp phasing) under uncertainty.
Recommend manufacturing strategies to inform senior leadership investment decisions by framing scenario-driven tradeoffs and providing clear guidance on capital allocation and prioritization (capex timing/scale and tooling plans) aligned to long-range business and technology objectives.
Partner with Central teams, Manufacturing, Technology Development, Finance, and Product teams to align product roadmaps to capacity and capital plans
Communicate scenario insights to executive and cross-functional stakeholders through structured narratives, visualizations, and decision/logic trees, highlighting risks, opportunities, and sensitivity to key assumptions.
Own scenario data pipelines and databases define governance for data quality, versioning, and auditability across planning studies.
Identify and lead automation opportunities to streamline planning workflows, improve forecast accuracy, and eliminate manual errors prototype or partner with analytics/IT to deploy sustainable solutions.
Lead complex, cross-site projects and mentor/guide other engineers on scenario methodology and optimization approaches
Bachelor's or Master's degree in Industrial Engineering, Operations Research, Supply Chain, Data Analytics, Engineering, or related discipline (advanced degree preferred).
8-10+ years of experience in semiconductor manufacturing planning, capacity/capital planning, industrial engineering, supply chain planning, or advanced packaging/assembly planning, with demonstrated ownership of cross-functional planning deliverables.
Proven expertise in scenario planning across multiple horizons (annual BP and multi-year long-range), including assumptions governance, sensitivity analysis, and decision framing.
Strong optimization and quantitative modeling skills (e.g., linear/integer programming, simulation, heuristic optimization, or comparable methods) applied to loading, capacity allocation, and capex efficiency.
Ability to translate complex technical and business inputs (technology qualification gates, ramp curves, tool constraints, yield/throughput levers) into practical plans and executive-ready recommendations.
Advanced data and analytics capability (e.g., SQL, Python/R, Power BI/Tableau, Excel modeling) able to build repeatable models and automate workflows.
Excellent stakeholder management and communication skills, including influencing without authority and presenting to senior leadership.
Demonstrated project leadership across departments/sites experience driving standard work, change control, and continuous improvement.
Preferred: deep knowledge of scenario, capacity and capital planning methodologies (e.g., constraint/bottleneck modeling, what-if scenario analysis, and long-range capex planning) advanced packaging manufacturing flow familiarity is a plus.
Job ID: 149001945
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