Principal AI Data Scientist - Wafer Fabrication

II-VI Aerospace & Defense

$138K — $165K *
Technical Services
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Minimum 5 years of experience in AI and machine learning, focusing on statistical analytic techniques.
  • Bachelor's degree in Data Science, Engineering, Science, Computer Science, or Mathematics; Master's degree preferred.
  • Proficiency in machine learning and advanced statistics applied to engineering or manufacturing problems.
  • Experience with SQL and modern data-processing technologies.
  • Strong programming skills in Python with knowledge of data-science libraries.

Responsibilities

  • Analyze wafer fabrication process data and equipment metrics.
  • Apply AI and machine learning techniques for process analysis and yield prediction.
  • Develop reusable data pipelines, analytical tools, and dashboards.
  • Integrate multi-source data from production and metrology systems.
  • Communicate analytical insights to engineering teams and management.
  • Collaborate on process monitoring and anomaly detection initiatives.
  • Establish best practices for data quality and AI usage in manufacturing.

Benefits

  • On-site work for the first three months with potential for hybrid afterward.
  • Opportunities for travel to share expertise at other company locations.
  • Flexible working hours, including occasional evenings and weekends.
  • Ergonomic workspace options, such as sit-stand desks.
Full Job Description
Job Description

Primary Duties & Responsibilities
  • Analyze datasets generated by wafer fabrication processes, equipment, sensors, metrology systems, and manufacturing execution systems.
  • Apply statistical analysis, AI, machine learning, and data-mining techniques for:
    • Deeper understanding of devices and fabrication processes.
    • Process monitoring and anomaly detection
    • Wafer and lot excursion analysis
    • Yield analysis and prediction
    • Root-cause investigation
    • Collaborate with others using AI & ML
    • Integrate data from multiple sources, including process recipes, equipment logs, sensor data, metrology results, defect inspection, and production history.
    • Translate analytical results into clear engineering insights and actionable recommendations.
    • Communicate these findings to engineers and managers.
    • Work with engineers to distinguish correlation from likely physical or process-driven causation.
    • Develop reusable data pipelines, analytical tools, dashboards, and model-monitoring methods.
    • Support design of experiments, process characterization, and continuous improvement activities.
    • Help establish best practices for data quality, feature engineering, model validation, documentation, and responsible use of AI in development and manufacturing.

Education & Experience
  • The Candidate will have a minimum of 5 years of experience with AI, preferably including ML, preferably with experience in statistical analytic techniques.
  • A Bachelor's degree in Data Science, Engineering, Science, Computer Science or Mathematics is required, a Master's degree is preferred.

Skills

The candidate will have competency in several of the following areas:
  • Several years of professional experience applying machine learning, artificial intelligence, advanced statistics, and data science to real-world engineering or manufacturing problems.
  • Experience with SQL and modern data-processing or data-platform technologies.
  • Strong knowledge of statistical methods, experimental design, regression, classification, clustering, anomaly detection, and model evaluation.
  • Programming skills in Python and experience with common data-science and machine-learning libraries.
  • Experience in AI/ML model deployment through RESTful APIs, containerization, and container orchestration.
  • Experience with cloud-based ML training and inference using AWS, GCP, Azure, or Databricks is a plus.
  • Experience working with structured, time-series, sensor, or high-volume manufacturing data.
  • Exposure to wafer fabrication, photonics, and telecommunications is a plus.
  • Ability to work collaboratively with domain experts and explain complex analytical results in practical engineering terms.
  • Demonstrated ability to take an analysis from problem definition through deployment, validation, and communication of results.

Working Conditions

The job is on-site for the first three months, with the possibility to convert to hybrid afterwards. The job requires weekly morning hours and occasional evening and weekend hours. Travel to other Coherent sites in the Bay Area and the US may be possible to share knowledge with other experts.

Physical Requirements
  • Sitting or standing several hours per day, with the option of having a sit-stand desk.
  • Extensive keyboard and mouse work.

Safety Requirements

All employees are required to follow the site EHS procedures and Coherent Corp. Corporate EHS standards.

Quality and Environmental Responsibilities

Depending on location, this position may be responsible for the execution and maintenance of the ISO 9000, 9001, 14001 and/or other applicable standards that may apply to the relevant roles and responsibilities within the Quality Management System and Environmental Management System.

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