Time Series Machine Learning Intern Schneider Electric

Phmsociety

Andover (MA)

On-site

USD 30,996 - 54,415

Full time

14 days+

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Job summary

A leading technology company based in Andover, MA is seeking a Time Series Machine Learning Intern for Summer 2026. In this role, you will develop Python-based algorithms for IoT data, create benchmarking frameworks, and run experiments to support product development. Ideal candidates are enrolled in a graduate program and have experience with time series data and related Python libraries. The position offers competitive hourly compensation and opportunities for overtime and recognition.

Qualifications

  • Currently enrolled in a graduate program in Mathematics, Statistics, Physics, Engineering, Data Science, or Computer Science.
  • Experience in full stack data science with deployed machine learning models in production.
  • Experience working with big datasets.

Responsibilities

  • Develop Python-based time series machine learning algorithms for IoT data.
  • Create frameworks for prototyping and benchmarking machine learning algorithms.
  • Run machine learning tests and experiments for product development.

Skills

Time series data experience
Python-based libraries (SKTime, tsfresh, Ruptures)
Cloud technologies (Databricks)
Scientific Python (NumPy, SciPy, scikit-learn, Pandas, XGBoost)
Version control (GitHub)

Education

Currently enrolled in a masters or doctoral program

Job description

Based in Andover, MA, Schneider Electric’s Artificial Intelligence (AI) hub team aims to deliver world class AI products to solve customer challenges by enhancing digital offers with AI driven insights and new kinds of AI products addressing Energy, Sustainability and Industrial Automation domains, all leveraging a comprehensive Platform approach.

We’re looking for a passionate and product‑minded Time Series Machine Learning Intern to join us in Summer 2026.

The candidate will help in developing data science products based on time series machine learning algorithms using IoT data. The position will report to the Senior Principal ML/AI Architect in the team but will work closely with respective offer managers and usecase squads.

What will you do?
  • Develop Python-based time series machine learning algorithms for fleetwide IoT data, including anomaly detection and classification.
  • Create frameworks for prototyping and benchmarking machine learning algorithms and tools on data across fleets of similar industrial assets.
  • Select appropriate datasets and data representation methods
  • Run machine learning tests and experiments to support the product development
  • Develop and test strategies for training and retraining machine learning systems
  • Research and survey industrial reports and technical papers on latest industrial trends, case studies, models and methodologies.
What's in it for you?

For this U.S. based position, the expected compensation range is $22.50 – $39.50 per hour. In addition, this position is eligible for overtime pay and recognition programs.

The compensation rate for this position is for candidates located within the United States. Individual pay is determined by several factors including knowledge, job‑related skills, experience, and relevant education or training.

What qualifications will make you successful for this role?
  • The candidate must be currently enrolled in a masters or doctoral graduate program in a related discipline such as Mathematics, Statistics, Physics, Engineering, Data Science or CS
  • Demonstrable experience in full stack data science, including developing and deploying machine learning models in a production environment
  • Experience working with time series data is required. Prior experience with Python-based libraries for time series, such as SKTime, tsfresh, Ruptures will be an advantage.
  • Familiarity with time series machine learning algorithms/ frameworks like ROCKET, Matrix profile techniques, contrastive learning, and architectures like InceptionTime and other 1D Convolutional Neural Networks will be a plus!
  • Familiarity with time series foundational models, like MOMENT, TimeGPT and Granite will be a plus!
  • Experience exploring and training models with big datasets, using cloud technologies (especially Databricks)
  • Proficient in scientific Python (NumPy, SciPy, scikit‑learn, Pandas, XGBoost), SQL, and version control (GitHub)
  • Ability to formulate hypotheses, draw conclusions and deliver results
  • Excellent verbal and written communication and interpersonal skills
  • Ability to present findings to stakeholders and communicate results to all colleagues
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