Foundry Automation ML Engineer

IntelHillsboro, OR
Onsite

About The Position

Intel Foundry Automation (IFA) is looking for a highly motivated ML Engineer who is passionate about Productizing AI powered end-to-end solutions for its Silicon factories while working at the intersection of machine learning, software engineering, and cloud computing. As a Machine Learning Engineer in IFA, you will play a pivotal role in building cutting-edge machine learning workflows and infrastructure that enable Foundry to produce AI models and sustain them in production. This position offers an exciting opportunity to contribute to scalable AI solutions, automate ML pipelines, and empower Intel's commitment to innovation. Your work will directly impact critical advancements in data analytics, computer vision, early/inline detection, reducing process variability and accelerating Yield ramps.

Requirements

  • A Bachelors degree in Computer Science, Computer Engineering, Data science, Computational Physics, or Applied AI with 5+ years of industry experience. OR Masters degree in Computer Science, Computer Engineering, Data science, Computational Physics, or Applied AI with 3+ years of industry experience. OR Ph.D. in Computer Science, Computer Engineering, Data science, Computational Physics, or Applied AI with 6+ months of industry experience.
  • Programming skills, particularly in Python with robust unit testing
  • Experience with software engineering principles (e.g., data structures, algorithms, object-oriented design).
  • Experience working with Image analytics libraries like OpevCV and machine learning frameworks like pytorch, Scikit-learn, or TensorFlow etc.
  • Strong understanding of Algorithm Optimization for CPUs and GPUs, AI fundamentals, and/or deep learning models.
  • Experience with MLOps, CI/CD knowledge and processes, Kubernetes, and/or ML automation pipelines.
  • Proven ability to develop and deploy ML models.
  • Solid foundation in machine learning algorithms, including supervised and unsupervised learning, deep learning, and/or reinforcement learning, and/or Bayesian analysis.

Nice To Haves

  • 1+ years of experience solving applied problems in semiconductor manufacturing or design.
  • Experience in Deep learning or Image analytics
  • Demonstrated ability to address complex use cases across various domains.
  • Strong communication and problem-solving skills, with experience driving solutions and leading initiatives.
  • Track record of creating prototypes and demos to effectively convey solutions.
  • Experience Fine-tuning Visual Language models (Florence, QWEN etc.)

Responsibilities

  • Design, build, and maintain scalable ML pipelines for data processing, model training, and inference in an on-prem cloud environment.
  • Prepare and process large-scale datasets for training and deploying ML models.
  • Develop and deploy APIs and microservices that interact with various components of the ML application stack.
  • Monitor, debug, and optimize deployed ML models to enhance performance and reliability.
  • Conduct programming, testing, and documentation to ensure high-quality deployment of machine learning solutions.
  • Work with containerization technologies like Docker and orchestration systems like Kubernetes to package and scale ML services.
  • Leverage Intel manufacturing's cloud-native ML platforms based on Kubernetes/Rancher to accelerate the deployment lifecycle.
  • Implement MLOps best practices for model versioning, monitoring, and continuous integration/continuous deployment (CI/CD).
  • Collaborate with software developers, data scientists, and DevOps engineers to integrate ML capabilities seamlessly into our products.
  • Optimize the performance, latency, and cost of our deployed ML models.

Benefits

  • We offer a total compensation package that ranks among the best in the industry. It consists of competitive pay, stock bonuses, and benefit programs which include health, retirement, and vacation.
  • Find out more about the benefits of working at Intel .

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What This Job Offers

Job Type

Full-time

Career Level

Mid Level

Number of Employees

5,001-10,000 employees

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