Senior Data Engineer (ML)

Posted Yesterday
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2 Locations
In-Office
Senior level
Information Technology • Software
The Role
Deliver and migrate production ML data pipelines from Databricks to an AWS SageMaker MLOps platform. Build feature engineering pipelines and feature store integrations, ensure parity/testing with Databricks outputs, manage storage/permissions/IAM, deploy via CI/CD and IaC, document runbooks, and collaborate with engineering, AWS ProServe, and client teams in a regulated iGaming environment.
Summary Generated by Built In

Working at CreateFuture
CreateFuture is an AI-native consulting partner where people do work that matters and are supported to do it well. We work alongside organisations such as PayPal, adidas, NatWest, FanDuel and Money Saving Expert, building digital products and services that make a difference  while always putting people first.

We’re a team of creators. We write code, shape delivery, build go-to-market strategies, develop AI solutions and create the practices that support our people. We work side by side with our clients, challenging what’s not working and helping them to build the future. Our commitment to craft, quality, and culture has helped us scale to over 600 people in just a few years.

Our UK Benefits 

  • 35 days leave (including bank holidays). 
  • Private medical insurance.
  • Enhanced parental and adoption leave. 
  • Financial coaching + 5% pension match.
  • 40 hours of paid learning and development.

 View our full list of UK benefits.
CreateFuture is a Great Place to Work-Certified™ company and has won Best Workplaces UK multiple years in a row.

Join us on our journey. Let’s create tomorrow, together, today.


About the role and team:
 
Role overview

CreateFuture is delivering the migration of an ML estate from Databricks to an AWS SageMaker-based MLOps platform, working alongside AWS. The Senior Data Engineer (ML) sits in the Databricks workstream team (Delivery Manager, Lead ML Ops Engineer, a second Senior Data Engineer ML, and 0.5 FTE Cloud/DevOps), building and migrating the data pipelines that feed model training and inference, and proving parity between the old and new platforms.

This is hands-on delivery in a regulated iGaming environment: production pipelines, not notebooks. Key responsibilities
  • Migrate ML data pipelines from Databricks (Spark/Delta Lake) to the SageMaker-based "golden template" architecture, working to the pattern set by the Lead ML Ops Engineer
  • Build and amend feature engineering pipelines, feature store integrations, and data access layers (S3, Glue, Lake Formation) supporting migrated models
  • Implement parity and statistical testing to prove migrated pipelines/models match Databricks outputs
  • Handle data migration/integration between Databricks and AWS: storage, permissions, IAM alignment
  • Work within CI/CD and IaC patterns for pipeline deployment; document runbooks and hand over to Evoke teams
  • Collaborate daily with Evoke ML engineering, the CF team, and AWS ProServe counterparts
Skills & experienceMust-have
  • Python / PySpark - Expert. Production data pipeline development, not analysis-only
  • AWS data/ML stack - Advanced. S3, Glue and/or EMR, IAM basics; 
  • AWS  ML stack SageMaker (Pipelines, Feature Store, Endpoints) 
  • SQL — Advanced strongly preferred.
  • ML pipeline experience. Pipelines feeding model training/inference — feature engineering, versioned datasets, reproducibility
  • Git + CI/CD for data/ML workloads
  • Terraform/CloudFormation/CDK - working knowledge
Nice-to-have
  • Databricks → AWS (or cross-platform) migration experience — the single strongest signal
  • Parity/statistical testing methodology
  • Data orchestration (Airflow, dbt, Step Functions)
  • Data governance & compliance (PII/GDPR); regulated industry background (iGaming strongly preferred, but FS, banking considered)
Soft skills
  • Comfortable working to an established pattern at pace within a small delivery team
  • Clear communicator with client stakeholders — must articulate their own experience specifically and confidently (see below)
  • Consulting/client-facing delivery experience advantageous
What we’ll offer you:

We trust people to do their best work. That means flexibility over rigid rules, impact over activity, and real investment in your growth both professionally and personally. You’ll be part of a supportive, and friendly culture, surrounded by smart, curious people who care deeply about what they do.
We offer flexible working, including hybrid and remote options. Our office hubs are located in Edinburgh, Leeds, Manchester, London and Bulgaria, with occasional travel to client sites or CreateFuture offices when needed.

We trust you to manage your time balancing collaboration with client time and focused work. What matters is the impact you have, not how busy you look.

Our hiring process

We try to keep our hiring process clear, fair and respectful of your time. We aim to get back to everyone who applies and we will be upfront about where you are in the process.

It usually looks like this:

  • Call with our Talent Acquisition Team 
  • Role specific capability interview 

Depending on the role, we might also ask you to do a short presentation, a practical or technical task or have a values focused conversation. We will explain what is involved before anything happens.

Inclusion at CreateFuture 

We believe diverse teams build better workplaces and better products. We want CreateFuture to be a place where people feel able to be themselves and do their best work.

If you need any adjustments or support during the application process, just. We will do what we can to help.

We look forward to your application!

Skills Required

  • Expert Python / PySpark for production data pipeline development
  • Advanced AWS data stack experience (S3, Glue and/or EMR)
  • AWS Lake Formation and IAM basics for storage and permissions alignment
  • AWS SageMaker (Pipelines, Feature Store, Endpoints)
  • Advanced SQL
  • ML pipeline experience: feature engineering, versioned datasets, reproducibility
  • Git and CI/CD for data/ML workloads
  • Working knowledge of Terraform, CloudFormation, or CDK (IaC)
  • Databricks to AWS (cross-platform) migration experience
  • Parity/statistical testing methodology for pipeline output validation
  • Data orchestration experience (Airflow, dbt, Step Functions)
  • Data governance and compliance experience (PII/GDPR); regulated industry background (iGaming/FS)
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The Company
HQ: Edinburgh
342 Employees

What We Do

CreateFuture was built to take action. With our 500-strong team of software engineering, strategy and design experts, across Edinburgh, Leeds, London and Manchester, we’re determined to get you exactly what you need. As with our past clients, we get to the root of your challenge and do everything it takes to create positive solutions by building digital products and services that solve problems. With years of experience helping catalyse major organisations into action, our rapid growth has been driven by people who seek to understand before they solve. We care about our craft. We challenge each other by asking, “Why not?”. And we’re proud to collaborate and partner with the likes of PayPal, adidas, FanDuel, Money Saving Expert, Penguin Random House, Yorkshire Building Society and more. With CreateFuture, our people are at the forefront of every outcome and we know that a strong team dynamic is critical to success, so we’ll be there for you every step of the way. We draw on their unique skills for problem-solving – and helping your teams unleash their potential too. Put simply, we want to be an organisation that people want to work for and want to work with. You don’t need to have all the answers. Share your problem and we’ll go from there. Let’s create something incredible, together, today.

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