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Data Science Intern (Hybrid, 6 Months)

TE Connectivity

Singapore2 weeks ago
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Job Type

internship

Description

At TE, you will unleash your potential working with people from diverse backgrounds and industries to create a safer, sustainable and more connected world. 

Job Overview

For more than 75 years, TE Connectivity has partnered with customers to produce highly reliable connectors and sensors that power a connected world. Our innovations enable electric vehicles, aircraft, digital factories, smart homes, medical devices, and next-generation communication infrastructure.

 

The Singapore R&D Center collaborates with CTOs across TE’s Business Units to drive advanced technologies that impact global markets. As part of TE’s Digitalization strategy, we are investing in simulation, modeling, and AI-driven data capabilities to accelerate New Product Development and enable “first-time-right” engineering.

 

We are looking for a Data Science Intern with strong programming skills and interest in Generative AI and Agentic AI, applied to real-world engineering and product design problems.

Job Responsibilities

 

 

  • Develop data science and AI solutions to support engineering design, material development, and manufacturing processes
  • Apply machine learning and statistical methods to analyze experimental, simulation, and production data
  • Design and prototype AI/agentic systems to automate engineering workflows, decision support, and knowledge retrieval
  • Work with structured, semi-structured, and unstructured data (including engineering data, images, and text)
  • Perform exploratory data analysis (EDA) to identify patterns, anomalies, and optimization opportunities
  • Develop predictive models (regression, classification, clustering) for engineering applications
  • Collaborate with cross-functional teams including material science, manufacturing, and product engineering
  • Ensure data quality through validation, preprocessing, and robust pipeline development

 

Job Requirements

 

Required:

 

  • Currently pursuing a degree in Data Science, Computer Engineering, Computer Science, AI, Statistics, Mathematics, Engineering, or related fields
  • Strong programming skills in Python (NumPy, Pandas, scikit-learn)
  • Understanding of machine learning fundamentals and data analysis techniques
  • Familiarity with engineering data (simulation, experimental, or manufacturing data is a plus)
  • Experience with version control (Git/GitHub/GitLab)
  • Strong analytical thinking and problem-solving skills
  • Good communication and teamwork skills

 

Preferred:

 

  • Exposure to Generative AI or LLMs, with focus on practical applications
  • Familiarity with agentic AI frameworks (e.g., LangChain, LlamaIndex) or workflow automation
  • Experience with deep learning frameworks (PyTorch, TensorFlow)
  • Knowledge of RAG, embeddings, or data integration techniques
  • Experience in computer vision or engineering-related analytics
  • Understanding of statistical inference, hypothesis testing, and experimental design

 

What You’ll Gain:

 

  • Hands-on experience applying AI (including agentic systems) to real engineering and product design challenges
  • Exposure to advanced R&D in materials, manufacturing, and digital engineering
  • Mentorship from experienced scientists and engineers
  • Opportunity to contribute to TE’s digital transformation and innovation initiatives

Competencies

Values: Integrity, Accountability, Inclusion, Innovation, Teamwork

This job is found at InterviewStack.io

Skills

generative aimachine learningdata analysisevent-driven architecturestatisticspythonnumpypandasscikit-learngitgitlabllmslangchainautomationdeep learningpytorchtensorflowragembeddingscomputer visionanalyticsproduct designdata sciencedata qualitydata integrationexperimental designhypothesis testing

About TE Connectivity

TE Connectivity plc (NYSE: TEL) is a global industrial technology leader creating a safer, sustainable, productive and connected future. TE is a trusted manufacturer and supplier of reliable and rugged electronic components, known for its broad portfolio of optimally engineered connectors and sensors.

manufacturing, electronicsWebsite