Internship: Anomaly Detection for Smart Maintenance

Damen

Gorinchem

On-site

EUR 6,700 - 10,000

Full time

27 hours ago
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Benefits offered by this job

Mentoring
Travel allowance
Research publication

Job summary

Damen RD&I invites you to join the Data Science team in Gorinchem as an intern on the Smart Maintenance project. You will help develop an anomaly detection pipeline, processing sensor data from vessels to identify abnormal behavior before failures occur.

You will choose a focused research topic with the team, potentially pursuing a thesis, and receive mentoring at academic level. The program offers a travel allowance, potential publication opportunities, and exposure to multidisciplinary

Qualifications

  • Currently pursuing a Bachelor or Master in a technical field such as Data Science, Applied Mathematics, Computer Science, or Mechanical/Electrical Engineering.
  • Experience with statistics, Python, and ideally time-series ML approaches.

Responsibilities

  • Support the anomaly detection project for vessel equipment.
  • Preprocess and analyze sensor/time-series data from onboard systems.
  • Run experiments in Python and evaluate model performance.

Skills

Statistics
Python
Time-series analysis
Machine Learning

Education

Bachelor or Master in Data Science / Applied Mathematics / Computer Science / Mechanical or Electrical Engineering

Tools

LSTMs

Job description

We offer you an Ocean of Possibilities. Join our family.


About Us

Damen aims to become the world's most sustainable and digitally connected shipyard. The Research, Development & Innovation(RD&I)department develops and implements the technology andknow-howto achieve these ambitions. We activelyassistthe business in creating an innovative product portfolio andprovideforward-thinking guidance to improve the quality and performance of Damen's products and services. You will be joining the Data Science team within Damen RD&I located in Gorinchem. Our department focuses on applying cutting-edge data and AI solutions to Damen's shipbuilding and maritime operations. The team includes domain experts in physics-informed machine learning, simulation acceleration, predictive maintenance, computer vision, and operational analytics. This internship is part of Smart Maintenance, a strategic project aimed at using AI to detect abnormal equipment behavior on board vessels before it leads to failure or unplanned downtime.


The role

As an intern, you will work on our Smart Maintenance project where we have developed an anomaly detection algorithm, which aims to help engineers spot early signs of equipment problems, such as engines, pumps, propulsion and cooling systems, before they escape into failures. Vessels generate huge amounts of sensor data during operation, and our goal is to turn that data into reliable, trustworthy signals that support maintenance decisions. You will contribute to an existing pipeline that learns what \"healthy\" equipment behavior looks like and flags deviations from it. Your primary focus will be on a dedicated research topic, to be selected together with the team, that strengthens a specific part of this pipeline — from data selection to detection reliability, health trending, explainability, or deployment. There is room to shape the exact topic based on your interests and background, either before or shortly after you start. This can be a thesis/graduate internship and could start as soon as possible, depending on your availability.


Possible research topics that we offer, on which the final scope is to be defined together:



  • Model transferability across vessels: exploring how an anomaly detection model trained on one vessel can be adapted to other vessels, machinery types, or operating environments — including retraining, recalibration, and drift detection strategies.

  • Reliable anomaly detection: improving detection models to minimize false alarms, adapt to different operating conditions, handle transient events, and quantify prediction confidence.

  • Health and degradation trending: moving beyond fault detection to identify gradual performance degradation, developing health indicators that give early warning of wear or efficiency loss.

  • Explainable AI and fault diagnosis: making anomaly models explainable, identifying which sensors or components drive an alert, and supporting root-cause analysis for engineers.

  • Defining \"healthy\" operation: identifying, selecting, and validating representative data from vessels operating under normal conditions, accounting for varying operating modes and environmental influences.


Key Accountabilities


  • Support the development and improvement of ML-based anomaly detection models for vessel equipment.

  • Preprocess and analyze sensor/time-series data from onboard systems.

  • Run experiments in Python, evaluating model performance against real and/or simulated data.

  • Work closely with our Data Scientists, maintenance engineers, and vessel operations stakeholders.

  • Document results and present findings to the team regularly.


Skills & Experience

We are looking for a student who:



  • Is currently pursuing a Bachelor or Master in Data Science, Applied Mathematics, Computer Science, Mechanical/Electrical Engineering, or a related technical field.

  • Ideally combines data science with a mechanical/electrical engineering background, with the ability to model equipment behavior and understand which sensors are informative for which failure modes.

  • Has experience with Statistics, Python, and ideally with machine learning (LSTMs) or time-series analysis.

  • Has an interest in predictive maintenance, sensor data or industrial/marine systems.

  • Is comfortable working with real-world, sometimes messy, operational data.

  • Communicates fluently in English.


What We Offer


  • Mentoring at academic level throughout the internship.

  • Internship/graduation fee and travel allowance for the duration of the assignment.

  • Opportunity to contribute to a high-impact predictive maintenance project used in real vessel operations.

  • Research publication is likely possible with a possible extension of the internship period.

  • Exposure to a multidisciplinary team combining data science and maritime engineering expertise.


Due to housing issues we cannot accept international students that do not have accommodation in the Netherlands yet.

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