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Machine Learning Engineer

In Technology Group

City Of London

Hybrid

GBP 45,000 - 65,000

Full time

Yesterday
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Job summary

A leading company is looking for a Machine Learning Engineer to join their Data Analytics business in London. The role involves building and optimizing machine learning models using Azure ML, collaborating with a multi-disciplinary team to provide insights related to pension schemes. This hybrid position offers competitive compensation and flexible working arrangements.

Benefits

Participation in annual discretionary Bonus Scheme
25 days holiday plus flexibility to buy or sell holiday
Flexible Bank holidays
Life Assurance cover, four times basic salary
Employee Assistance Programme
Access to a digital GP service
Paid volunteering day

Qualifications

  • Experience in designing and managing machine learning models using Azure ML.
  • Strong skills in Python and SQL for data wrangling and ETL processes.
  • Experience in CI/CD and DevOps/MLOps practices.

Responsibilities

  • Develop machine learning and statistical models to predict outcomes related to pension schemes.
  • Design and maintain machine learning models using Azure ML.
  • Collect, clean, and preprocess large datasets for analysis.

Skills

Python
SQL
CI/CD
Power BI
Data Management

Job description

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Machine Learning Engineer, City of London

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Client:
Location:

City of London, United Kingdom

Job Category:

Other

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EU work permit required:

Yes

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Job Reference:

23d6044f8783

Job Views:

3

Posted:

29.06.2025

Expiry Date:

13.08.2025

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Job Description:

Job Title: Machine Learning Engineer

Location: London (1 days per week onsite) - Flexible

Salary: £45,000 DOE + Benefits


Our Data Analytics business continues to grow and we are now looking for an experienced and technical Machine Learning (ML) Engineer to join one our offices with hybrid or remote UK working. This is an exciting role and would most likely suit someone with previous experience in a similar role where they have gained knowledge and experience of designing, building, optimising, deploying and managing business-critical machine learning models using Azure ML in Production environments. You must have good technical knowledge of Phyton, SQL, CI/CD and familiar with Power BI.

A FTSE 250 company, they combine expertise and insight with advanced technology and analytics to address the needs of over 1,400 schemes and their sponsoring employers on an ongoing and project basis. We undertake administration for over one million members and provide advisory services to schemes and corporate sponsors in respect of schemes of all sizes, including 88 with assets over £1bn. We also provide wider ranging support to insurance companies in the life and bulk annuities sector.

The Team

The client is a specialist and multi-disciplinary team consisting of actuaries, data scientist and developers. Our role in this mission is to pioneer advancements in the field of pensions and beyond, leveraging state-of-the-art technology to extract valuable and timely insights from data. This enables the consultant to better advise Trustees and Corporate clients on a wide range of actuarial-related areas.

The Role

As a Machine Learning Engineer you will:

  • Model development. Work collaboratively with actuarial analysts to develop machine learning and statistical models to predict outcomes, related to pension schemes, such as life expectancy, default risk, or investment returns. Identify appropriate machine learning algorithms and apply them to enhance predictions, automate decision-making processes, and improve client offerings.
  • Machine Learning Operations. Responsible for designing, deploying, maintaining and refining statistical and machine learning models using Azure ML. Optimize model performance and computational efficiency. Ensure that applications run smoothly and handle large-scare data efficiently. Implement and maintain monitoring of model drifts, data-quality alerts, scheduled r-training pipelines.
  • Data Management and Preprocessing. Collect, clean and preprocess large datasets to facilitate analysis and model training. Implement data pipelines and ETL processes to ensure data availability and quality.
  • Software Development. Write clean, efficient and scalable code in Python. Utilize CI/CD practices for version control, testing and code review.
  • Work closely with actuarial analysts, actuarial modelling team (AMT) and other colleagues to integrate data science findings into practical advice and strategies.
  • Stay abreast of new trends and technologies in Data Science technologies and pensions to identify opportunities for innovation.
  • Provide training and support to other team members on using machine learning tools and understanding analytical techniques.
  • Interpret and explain machine learning concepts and findings to other members of the analytics team and non-technical stakeholders.

Your profile

Essential Criteria

  • Previous experience in designing, building, optimising, deploying and managing business-critical machine learning models using Azure ML in Production environments.
  • Experience in data wrangling using Python, SQL and ADF.
  • Experience in CI/CD and DevOps/MLOps and version control.
  • Familiarity with data visualization and reporting tools, ideally PowerBI.
  • Good written and verbal communication and interpersonal skills. Ability to convey technical concepts to non-technical stakeholders.
  • Experience in the pensions or similar regulated financial services industry is highly desirable.
  • Experience in working within a multidisciplinary team would be beneficial.

We offer an attractive reward package, typical benefits can include:

  • Participation in annual discretionary Bonus Scheme
  • 25 days holiday plus flexibility to buy or sell holiday
  • Flexible Bank holidays
  • Flexible Benefits Scheme to support you in and out of work, helping you look after you and your family covering Security & Protection, Health & Wellbeing, Lifestyle
  • Life Assurance cover, four times basic salary
  • Rewards (offers High Street discounts and savings from retailers and services providers as well as offers available via phone)
  • Employee Assistance Programme for you and your household
  • Access to a digital GP service
  • Paid volunteering day when participating in Company organised events
  • Staff referral scheme when you introduce a friend

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