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Ferroelectric Memory Company
Product Engineering Analyst (Yield & Data)
Dresden
- Neu
- Veröffentlicht am 21.05.2026
- Festanstellung
Role Overview
- Drive data‑driven insights across semiconductor test structures and product lifecycles.
- Strong focus on yield improvement, failure analysis and product performance.
- Transform large‑scale manufacturing and test data into actionable insights.
- Collaborate at the intersection of Yield Engineering, Product Engineering and Data Science.
- Improve yield, quality and cost through advanced analytics and automation.
- Apply strong semiconductor domain expertise combined with data analysis capabilities.
- Strong experience in data analysis within semiconductor or manufacturing environments
- Proficiency in Python (Pandas, NumPy, SciPy, Matplotlib)
- Strong knowledge of statistics and data modeling
- Understanding of semiconductor yield concepts and test flows (CP/FT)
- Analyze large‑scale datasets from wafer sort (CP), final test (FT) and fab processes to drive yield and product insights.
- Conduct Pareto analyses, binning studies and correlation analyses across process, test and product parameters.
- Identify systematic yield limiters and lead root‑cause investigations of product and process failures.
- Develop and apply statistical and data‑driven models to support yield and performance optimization.
- Design, develop and maintain automated data pipelines and analysis tools.
- Create dashboards, automated reports and visualization tools for scalable insights.
- Enable data‑driven decision‑making across cross‑functional teams and stakeholders.
- Basic programming proficiency, particularly in Python.
- Experience with SQL and database querying.
- Strong analytical mindset with a high level of attention to detail.
- Ability to translate complex data into meaningful engineering insights and actionable recommendations.
- Proactive, automation‑driven approach to problem solving.
- Comfortable working in cross‑functional, collaborative environments.
- Background in Electrical Engineering or Microelectronics.
- Expertise as a Product Engineer and/or Yield Engineer.
- Familiarity with semiconductor test data formats (STDF/ATDF), including wafer maps and binning analysis.
- Experience using data visualization and analytics tools to interpret large datasets.
- Working knowledge of Design of Experiments (DOE) and Statistical Process Control (SPC) methodologies
- Proficiency working with large‑scale data pipelines and/or cloud‑based data platforms.