Industrial Data Scientist

Industrial Data Scientist

Full-Time 50000 - 70000 £ / year (est.) Home office (partial)
SLAMcore

At a Glance

  • Tasks: Analyse billions of data rows to optimise waste sorting and improve recycling processes.
  • Company: Join Recycleye and CPG, leaders in innovative waste management solutions.
  • Benefits: Competitive salary, travel opportunities, and hands-on experience in a dynamic field.
  • Other info: Opportunity for growth and learning in a fast-paced, impactful environment.
  • Why this job: Make a real impact in recycling while working with cutting-edge technology.
  • Qualifications: Experience in data analytics, Python coding, and statistical modelling required.

The predicted salary is between 50000 - 70000 £ per year.

The opportunity

Recycleye and CPG are building a team to provide data analytics and actionable insights to a waste facility operator.

There are near Infrared sorters (NIR), balers, AI powered airjets, AI robots, mechanical screens, and many different types of machines in a waste facility.

The waste that comes in is varied on a daily, hourly, minute basis.

The machines and plant can be configured in thousands of ways to sort the material, changing conveyor speeds, sorter settings, and coming up with complex business logic to match output to material pricing and revenue.

This is an exciting opportunity to join the team to help push the boundaries of material sorting in waste facilities – understand the data, present to a team of experts, and develop models to automate and optimise throughput, revenue, and material output purity.

If you ever wanted to make a difference in the world of recycling this is it!

Responsibilities Overview

  • Track, measure, analyse billions of rows of time‑series data from a waste facility. Motors, sorters, AI cameras, etc.
  • Develop methods to link, simplify, clean/noise the data and visualise in clear graphics/analytics for a non‑technical audience (experts first, waste operators second) to understand and action.
  • Develop plant‑level understanding – from the data. Translate data into logical rules or first principles for improved understanding.
  • Build statistical models detect anomalies and optimise plant output, revenue, etc. and test them. Understand the trade‑offs.
  • A/B test different plant setups based on optimisation algorithms, measure output and iterate.
  • Develop scoring functions, feedback loops, and quantitative metrics to compare results against.

Requirements

  • A background in data analytics and statistical modelling from data.
  • Ability to write high‑quality production‑level code (we use Python), mathematical models, statistical simulations. Advanced SQL skills.
  • Comfortable with getting hands‑on in large scale physical systems.

Going into waste facilities to deeply understand processes, flow of material, the gap between physical and virtual world.

  • Experienced in data visualisation.
  • Practical – ability to get into the customer shoes and solve trivial breakdown or other problems before complex optimisation.
  • Ability to travel (to the US) up 1‑2 weeks a quarter.
  • It's a bonus if you have
  • Experience in Reinforcement Learning or similar optimisation techniques.
  • Machine learning experience.
  • Computer vision experience – especially object detection models.
  • Experienced with large datasets – billions of rows.
  • Time‑series data experience.
  • Anomaly detection.
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SLAMcore

Contact Details:

SLAMcore Recruitment Team

StudySmarter Expert Advice🤫

We think this is how you could land Industrial Data Scientist

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We think you need these skills to ace Industrial Data Scientist

Data Analytics
Statistical Modelling
Python Programming
Advanced SQL
Data Visualisation
Anomaly Detection
Reinforcement Learning

Some tips for your application 🫡

Show Off Your Projects:In the world of data science, your projects can speak volumes about your skills. Make sure to showcase a few key projects in your CV or portfolio, especially those that highlight your ability to work with data sets, build models, or use relevant tools like Python, R, or SQL. Don’t forget to include links to any GitHub repositories if applicable!

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