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Machine Learning Test Capability Eng.

Nokia
United States, United Statesfull_timeVerifiedPosted 8 May 2026
💰 $2,147,483,647/yr

About the role

As a Machine Learning Test Capability Engineer at Nokia, you will join a dynamic team focused on advancing optical communication technologies through intelligent, data-driven test methods. Reporting directly to the Sr. Manager of Test Capability Engineering, you will work alongside a team of test capability engineers embedded across our coherent pluggable product lines. Your role bridges big data infrastructure, machine learning, and manufacturing test — translating the rich datasets generated by our test platforms into predictive models, automated diagnostics, and yield intelligence. The collaborative environment fosters open communication, where your insights and feedback are valued and drive meaningful change. Enjoy competitive compensation, a comprehensive benefits package, and opportunities for professional growth in a state-of-the-art facility.

We are looking for recent or upcoming graduates (MS or PhD) in Data Science, Machine Learning, Electrical Engineering, or Computer Science.
 

  • Design and deploy machine learning and big data solutions that integrate directly with Nokia’s manufacturing test platforms for coherent pluggable products. 

  • Partner with test capability engineers to identify opportunities where predictive modeling, anomaly detection, and statistical inference can improve yield, reduce cycle time, and accelerate fault isolation. 

  • Build and maintain scalable data pipelines that aggregate and normalize test data across manufacturing sites and product families. 

  • Develop ML models for test outcome prediction, failure classification, and early warning of process drift or hardware degradation. 

  • Apply unsupervised and supervised learning methods to identify latent patterns in optical transceiver test data. 

  • Collaborate with cross-functional stakeholders — including development, manufacturing, and product engineering — to integrate ML insights into actionable test platform changes. 

  • Establish and maintain best practices for model validation, versioning, and deployment within the test environment. 

  • Communicate findings clearly to technical and non-technical audiences, including engineering leadership. 



 

You have:

  • MS or PhD in Data Science, Machine Learning, Electrical Engineering, Computer Science, Applied Mathematics, Statistics, or a related quantitative field.

  • Strong foundation in machine learning methods: supervised/unsupervised learning, regression, classification, clustering, anomaly detection.

  • Proficiency in Python and data science stack (pandas, scikit-learn, PyTorch or TensorFlow, etc.).

  • Proficiency in SQL (MySQL or other relational database frameworks) for large-scale data extraction and analysis.

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Company

Nokia

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