Machine Learning Engineer

Greenhouse Software, Inc.

Dundee

Hybrid

GBP 60,000 - 90,000

Full time

2 days ago
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Benefits offered by this job

Lunch budget on-site
Fully stocked kitchen
Hybrid work model

Job summary

Optimove is hiring a Machine Learning Engineer for the Personalize team in the UK. You will shape and own medium-sized ML features end-to-end, from framing to deployment, working with ML, MLOps and software engineering to deliver impactful personalization capabilities.

The role emphasizes productionising models as APIs, real-time and batch processing, and ongoing research. It is a hybrid role with two days per week in the Dundee office, and requires eligibility to work in the UK.

Qualifications

  • Bachelor's degree in Computer Science, Data Science, Statistics or related field, or equivalent practical experience.

Responsibilities

  • Own the delivery of ML features end-to-end within Personalize, from problem framing to deployment.
  • Develop predictive ML models for classification, ranking and personalization using text data.
  • Leverage LLMs and state-of-the-art techniques to enhance product capabilities.
  • Operationalize models as APIs across real-time and batch environments.
  • Monitor production models for data quality and degradation.
  • Collaborate with product, MLOps and software engineering teams on new ML applications.
  • Research new ML methods and share findings with the team.
  • Proactively surface data challenges and drive quality improvements.

Skills

Python
SQL
ML concepts
NLP
Cloud technologies
CI/CD
Git
Docker
Explainability
Data privacy

Education

Bachelor's degree in CS/DS/Statistics

Tools

Docker
Snowflake
Terraform
IaC tooling

Job description

At Optimove, we believe people are capable of more than a single job description. You’re not hired just to fill a position- you’re empowered to shape it, grow it, and make it your own.
We call this being Positionless.
And Positionless isn’t just our culture. It’s our product.
Optimove is the creator of Positionless Marketing, an AI-powered platform that gives every marketer the power to analyze, create, launch, and optimize independently. The result is faster execution, deeper personalization, and 88% greater campaign efficiency.
Recognized as a Visionary in Gartner’s Magic Quadrant, we partner with leading brands like Sephora, Staples, and Entain. Today, more than 500 Optimovers across NYC, London, Tel Aviv, Scotland, Brazil, Estonia, and beyond are building the future of marketing together, in an environment that actively encourages ownership and growth, with two out of every three managers promoted from within.
If you’re looking for a place where you can do more, be more, come grow with us.

About the Role

As a Machine Learning Engineer, you'll join our Personalize team, helping shape and build the products that let our customers personalise messages across every digital touchpoint. You'll work with text data and with cutting-edge technologies including Large Language Models (LLMs), bringing Accessible Intelligence to our customers across both Personalize and Optimove's overall platforms.

This is a role for an engineer who's ready to own meaningful, medium-sized pieces of our personalisation roadmap end-to-end - from problem framing through to deployment and monitoring - and trusted to do so with minimal oversight. It's not solo delivery: you'll be working closely with a dynamic team spanning ML, MLOps and software engineering, and should be happy to contribute at every level, from early-stage research through to production support.

Role & Core Responsibilities
  • Own the delivery of medium-sized ML features end-to-end within Personalize - problem framing, data preparation, model build/train, evaluation, deployment and monitoring - to predictable timelines.
  • Develop predictive ML models for classification, ranking and personalisation, working with our text data.
  • Leverage LLMs and other state-of-the-art techniques to enhance product capabilities.
  • Operationalise models as APIs across real-time and batch environments.
  • Monitor production models in your own scope, treating data quality issues and model degradation as a priority.
  • Research new ML applications and improve pre-existing models, sharing findings with the wider ML, MLOps and engineering team.
  • Collaborate closely with product, MLOps and engineering teams to define and prepare new ML applications, contributing meaningfully to planning and grooming.
  • Proactively surface and resolve technical and data challenges before they affect delivery, model quality or customers.
Best Bits of the Job
  • Exposure to a wide range of ML domains, including large-scale search, ranking, Natural Language Processing, hybridisation, classification and text data processing.
  • Working with modern ML technologies, including LLMs, to enhance our products.
  • Fully real-time architecture for data processing, model development and deployment.
  • Deploying and enhancing ML frameworks, optimising for inference and training/retraining cycles.
  • Online testing of models with live data, using our proprietary A/B/N testing technology to see quickly what performs well.
  • A supportive, collaborative team spanning ML, MLOps and software engineering, where rapid experimentation is the norm.
  • Dedicated time to research new methods, build proofs-of-concept, and ship to production quickly when they work.
  • Everyday use of modern AI coding assistants (e.g. Claude) to speed up experimentation and review.
  • Bachelor's degree (or equivalent) in Computer Science, Data Science, Statistics or a related field, OR 1–4 years' professional experience building and deploying ML models.
  • Strong understanding of core ML concepts - supervised/unsupervised learning, model evaluation, feature engineering - and broad familiarity with common algorithms and architectures.
  • Strong Python (pandas, NumPy, etc.) and SQL skills
  • Comfortable with the standard ML toolkit: Git, Docker, scikit-learn, PyTorch or TensorFlow, and ML pipelines.
  • Hands-on experience with text data and relevant Natural Language Processing techniques.
  • Solid experience with cloud technologies and data storage solutions, including Snowflake.
  • Everyday use of AI coding assistants (e.g. Claude), and a basic understanding of responsible AI practices - data privacy, bias/fairness and explainability.
  • Must be eligible to work in the UK – we are unable to provide sponsorship at this time
  • This is a Hybrid role, and you will be required in our Dundee office two days per week.
  • Understanding of personalisation across domains such as sports betting and gaming, and what best practice looks like there.
  • Full understanding of recommendation algorithms and their applications.
  • Professional experience in personalisation and/or predictive CRM, and micro-segmentation.
  • Experience with CI/CD pipelines and Infrastructure as Code (IaC) tools (Terraform, Bicep, etc.).
Growth & Progression

This role sits on the in‑role path towards Senior Machine Learning Engineer. As you grow, you'll deepen your expertise in our core ML stack, take on end-to-end ownership of larger features, represent the team in cross‑functional planning with MLOps and software engineering.

Working at Optimove

Optimove offers a vibrant, people‑first culture where innovation, ownership, and continuous learning shape everything we do. Our UK team enjoys a modern office with a hybrid work model, daily lunch budget when onsite, and a fully stocked kitchen, along with a wide range of social events throughout the year. We’re committed to helping our people grow in an inclusive, supportive workplace recognised as one of the UK’s Best Workplaces in Tech and for Wellbeing.

Optimove is an equal opportunity employer. We consider all qualified applicants fairly, without regard to race, ethnicity, gender, age, religion, disability, sexual orientation, or any other characteristic protected by applicable law. If you require any adjustments during the recruitment process, please let us know.

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