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ML Research Engineer

Aeris-UK

Greater London

Hybrid

GBP 52,000

Full time

9 days ago

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Job summary

A leading applied AI company seeks a highly skilled ML Research Engineer to build and optimize complex simulation environments for training machine learning models. The ideal candidate will have a strong programming background, model development experience, and a keen interest in practical AI applications. Join a dynamic team focused on innovative solutions and collaboration in a stimulating environment.

Benefits

Flexible working
Generous pension with employer contributions
Private health insurance
Eye tests contribution
Life insurance and income protection
Social events
Professional memberships support

Qualifications

  • Proven experience in programming with Python and familiarity with at least one additional programming language.
  • Demonstrated experience in simulation and machine learning.
  • Familiarity with agile project management methodologies.

Responsibilities

  • Developing and implementing complex simulation environments to support machine learning model training.
  • Collaborating with clients to design simulation scenarios.
  • Designing and implementing machine learning models.

Skills

Programming
Modelling
Machine Learning
Data Exploration
Software Development
DevOps

Education

Bachelor’s or higher degree in Computer Science or related field

Tools

Python

Job description

Salary:£52,000 per year

Location:Remote (UK-based) with a weekly in-person collaboration in London

Job Description

We are seeking a highly skilled and motivated ML Research Engineer to join our dynamic team. In this role, you will be responsible for building and optimizing complex simulation environments to facilitate the training of machine learning models. The ideal candidate will have a strong background in programming, modelling and machine learning, with optional expertise in reinforcement learning.

About Aeris

Aeris-UK is an applied AI company working on real-world problems that require creativity, rigour and solid engineering. We build machine learning systems that are efficient, understandable and ready to operate in the complexity of real environments, whether that involves supporting infrastructure resilience, enabling autonomous decision-making or developing tools to help people reason under uncertainty. Our projects are practical in focus but intellectually demanding, drawing on ideas from simulation, human-AI interaction, multi-agent learning and model-based reasoning.

We are a small team with a strong research culture and a shared interest in solving meaningful and challenging problems. Everyone contributes directly to project work, and we collaborate across disciplines, whether your background is in reinforcement learning, software engineering, probabilistic modelling or systems design. We often work in partnership with researchers, government teams and other specialists, so communication and openness are important in everything we do.

As a team, we value clarity over hierarchy and experimentation over perfection. We are growing steadily and carefully, with a mix of longer-term research and near-term applications. For someone early in their career, this offers exposure to a broad range of ideas, the chance to work across technical boundaries and the opportunity to influence how we grow.

What you’ll be doing

This may include:

  • Developing and implementing complex simulation environments to support machine learning model training.
  • Collaborating with clients and stakeholders to understand requirements and design simulation scenarios aligned with real-world applications.
  • Applying expertise in modelling to create realistic and scalable simulations.
  • Carrying out data science activities, including data exploration and analysis, to inform simulation design and model training strategies.
  • Designing and implementing machine learning models, with a focus on both supervised and unsupervised learning techniques.
  • Exploring and implementing reinforcement learning algorithms, with a preference for experience in multi-agent environments.
  • Developing and integrating physics or engineering models into simulation environments to enhance realism and accuracy.
  • Applying your strong software skills, including proficiency in Python and ideally another programming language.
  • Applying DevOps processes to ensure seamless integration of ML training pipeline.

Who we’re looking for

Someone with many of the following:

  • Bachelor’s or higher degree in Computer Science, Machine Learning or any related field.
  • Proven experience in programming with Python and familiarity with at least one additional programming language.
  • Demonstrated experience in simulation and machine learning.
  • Familiarity with or experience in agile project management methodologies.
  • Strong understanding of data science principles, including data exploration and analysis.
  • Proficiency in developing and implementing machine learning models, both supervised and unsupervised.
  • Familiarity with model development, such as physics or engineering models, for integration into simulations.
  • Good Software development and debugging skills.
  • DevOps expertise/experience for efficient integration and deployment.
  • Optional: Experience in reinforcement learning, especially in multi-agent environments.

What we can offer you

The Aeris team comes from different personal, professional and organisational backgrounds. We are driven by a deep intellectual curiosity that powers us forward each day. You’ll learn something new from people you meet and also have the opportunity to make your mark on a growing start-up.

Some of our benefits:

  • Flexible working: We believe people have different responsibilities and interest that require something different to a strict working day. We trust our people to organize for their own work.
  • Remote working but with the opportunity to work together weekly (if in London).
  • Generous pension: 8% employer salary contribution if employee pays at least 5% contribution; 5% employer contribution otherwise.
  • Private health insurance (optional as it’s taxable sadly).
  • Eye tests and contribution towards cost of corrective lenses.
  • Life insurance, critical illness protection and income protection.
  • Social events: We have frequent socials and informal get-togethers to help make sure you enjoy your time with us.
  • Professional memberships (if it is with a qualifying body).

If you are passionate about pushing the boundaries of machine learning research and have the skills to contribute to our innovative projects, we invite you to apply and join our forward-thinking team.

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