Machine Learning Engineer

Machine Learning Engineer

Full-Time 36000 - 60000 Β£ / year (est.) No home office possible
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At a Glance

  • Tasks: Create a proof of concept using data preparation and anomaly detection techniques.
  • Company: Join a forward-thinking team focused on machine learning innovation.
  • Benefits: Remote work, flexible hours, and potential for contract extension.
  • Why this job: Make an impact by delivering clear insights from data to stakeholders.
  • Qualifications: Strong Python skills and experience in feature engineering and anomaly detection.
  • Other info: Opportunity to work in a dynamic environment with potential for future projects.

The predicted salary is between 36000 - 60000 Β£ per year.

Duration: 5 weeks (with potential for extension)

Status: Outside IR35

Location: Remote (UK-based)

Start Date: ASAP

About the Role

We are seeking an experienced Data & ML Contractor to deliver a proof of concept using static, structured datasets. This is a focused, pragmatic engagement centred on data preparation, feature engineering, and anomaly detection - with an emphasis on clear, interpretable outputs for stakeholders.

This is not a heavy Data Engineering or MLOps engagement. There is no requirement for live pipelines, streaming ingestion, or ongoing automated refresh. The successful candidate will work hands-on to profile data, engineer meaningful features, develop detection logic, and communicate findings effectively to non-technical stakeholders.

Essential Skills & Experience

  • Strong Python for data processing and analytics (e.g., pandas, numpy; scikit-learn or equivalent)
  • Structured data expertise: joins, aggregations, data cleaning, handling missing data/outliers, basic data modelling concepts
  • Feature engineering: ability to craft interpretable, business-relevant features
  • Anomaly detection experience: practical knowledge of rule-based and statistical methods; ML-based approaches where appropriate
  • Requirements & communication: ability to work with stakeholders, define success criteria, and explain outputs clearly

Desirable (Nice to Have)

  • Power BI / BI visualisation (or similar) to support validation and stakeholder-facing outputs
  • Familiarity with Azure for accessing datasets or sharing PoC artefacts (basic storage/compute)
  • Ability to outline what would be needed to scale the PoC toward production later (without implementing full MLOps now)

Apply directly or contact mmatysik@trg-uk.com

Machine Learning Engineer employer: trg.recruitment

Join a forward-thinking company that values innovation and collaboration, offering a dynamic remote work environment for Machine Learning Engineers. With a strong emphasis on employee growth, you will have the opportunity to enhance your skills in data preparation and feature engineering while working on impactful projects. Enjoy the flexibility of a contract role with the potential for extension, all while contributing to meaningful outcomes for stakeholders.
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Contact Detail:

trg.recruitment Recruiting Team

StudySmarter Expert Advice 🀫

We think this is how you could land Machine Learning Engineer

✨Tip Number 1

Network like a pro! Reach out to your connections in the machine learning field and let them know you're on the lookout for opportunities. Sometimes, a friendly chat can lead to job openings that aren't even advertised yet.

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your projects, especially those related to data preparation and anomaly detection. This will give potential employers a taste of what you can do and how you communicate your findings.

✨Tip Number 3

Prepare for interviews by brushing up on your Python skills and understanding feature engineering concepts. Be ready to discuss your approach to data cleaning and how you would handle missing data or outliers.

✨Tip Number 4

Don't forget to apply through our website! It’s the best way to ensure your application gets noticed. Plus, we love seeing candidates who take the initiative to connect with us directly.

We think you need these skills to ace Machine Learning Engineer

Python
Data Processing
Data Analytics
pandas
numpy
scikit-learn
Structured Data Expertise
Data Cleaning
Feature Engineering
Anomaly Detection
Rule-Based Methods
Statistical Methods
Communication Skills
Stakeholder Engagement
Power BI

Some tips for your application 🫑

Tailor Your CV: Make sure your CV highlights your experience with Python, data processing, and feature engineering. We want to see how your skills match the role, so don’t be shy about showcasing relevant projects!

Craft a Compelling Cover Letter: Your cover letter is your chance to shine! Use it to explain why you’re the perfect fit for this Machine Learning Engineer role. We love seeing enthusiasm and a clear understanding of the project’s goals.

Showcase Your Communication Skills: Since you'll be working with non-technical stakeholders, it's crucial to demonstrate your ability to communicate complex ideas simply. We recommend including examples in your application where you've done this successfully.

Apply Through Our Website: We encourage you to apply directly through our website for a smoother process. It helps us keep track of applications better and ensures you don’t miss out on any important updates!

How to prepare for a job interview at trg.recruitment

✨Know Your Tech Inside Out

Make sure you brush up on your Python skills, especially with libraries like pandas and scikit-learn. Be ready to discuss how you've used these tools in past projects, particularly around data preparation and feature engineering.

✨Prepare for Anomaly Detection Questions

Since the role focuses on anomaly detection, be prepared to explain different methods you've used, whether rule-based or statistical. Have examples ready that showcase your practical knowledge and how you communicated findings to non-technical stakeholders.

✨Showcase Your Communication Skills

This role requires clear communication with stakeholders. Practice explaining complex concepts in simple terms. You might even want to prepare a mini-presentation on a past project to demonstrate your ability to convey technical information effectively.

✨Think About Scalability

While this position isn't about MLOps, it's important to show that you understand what it takes to scale a proof of concept. Be ready to discuss what steps would be necessary to transition your work into a production environment later on.

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