Lead Data Intelligence Machine Learning Engineer

Reposted 8 Hours Ago
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Dubai, ARE
In-Office
Expert/Leader
Appliances • Manufacturing
The Role
The role involves designing automated labelling pipelines, integrating them with existing systems, and optimizing data workflows for machine learning applications.
Summary Generated by Built In
About us

At Dyson, we’re driven by a relentless pursuit of innovation—pushing boundaries in engineering, AI, and robotics. Our new Data Intelligence team sits at the heart of this mission: shaping Dyson’s future through data. Here, we blend creativity, precision, and audacity to power intelligent products. We craft data strategies and pipelines that fuel the next generation of connected devices.


You’ll work alongside brilliant minds from Dyson global engineering team and external software/hardware partners in an environment built for exploration, discovery, delivery and impact.

 About the role

We are looking for a specialized Lead Data Intelligence Machine Learning Engineer to design and implement in-house tools that automate our data labelling pipelines. Your primary goal will be to reduce our reliance on manual annotation by leveraging techniques like Active Learning, Weak Supervision, and Synthetic Data Generation. You will bridge the gap between raw data collection and model-ready datasets, ensuring high-quality labels at scale.

 Key Responsibilities
  • Architect Labelling Pipelines: Design and deploy end-to-end automated labelling systems using frameworks like Snorkel, Cleanlab, or custom active learning loops.

  • Develop "Human-in-the-Loop" (HITL) Systems: Build interfaces and workflows where models pre-label data and humans only intervene on high-uncertainty samples.

  • Quality Assurance & Denoising: Implement algorithmic checks to identify and correct mislabelled or "noisy" data within existing datasets.

  • Tooling & Integration: Collaborate with software engineers to integrate labelling tools with our existing data lakes and ML training infrastructure.

  • Model Optimization: Fine-tune "teacher" models to generate high-quality pseudo-labels for "student" models.

  • Set up and maintain robust data preparation infrastructure—optimising for data quality, speed, and seamless integration with downstream MLOps pipelines.

  • Perform data visualization and in-depth analysis using advanced data and feature engineering techniques. You’ll help transform raw data into actionable insight, supporting both research and deployment.

  • Work closely with Data Scientists, Software Engineers, and Product teams to ensure high data quality and usability across products and projects.

 About you
  • At least 8+ years of professional experience in Machine Learning engineering, specifically focused on data centric-AI or computer vision/NLP pipelines.

  • Proficiency in Python: Mastery of the Machine Learning stack (PyTorch or TensorFlow, NumPy, Pandas, Scikit-learn).

  • Automated Labelling Expertise: Proven experience with Weak Supervision (labelling functions) or Active Learning strategies (uncertainty sampling, diversity sampling).

  • Data Engineering: Experience with SQL and NoSQL databases, and managing large-scale unstructured data (images, text, or audio).

  • Cloud Infrastructure: Familiarity with AWS (SageMaker Ground Truth), GCP (Vertex AI), or Azure ML labelling services.

  • Version Control for Data: Experience with DVC (Data Version Control) or similar tools to track dataset iterations.

  • Hands-on expertise building auto-labelling solutions or working with large-scale data annotation workflows.

  • Advanced skills in Python (and/or other relevant languages), and experience with key ML/data science libraries (e.g. TensorFlow, PyTorch, scikit-learn, pandas).

  • Experience designing, deploying, and maintaining scalable data pipelines, including data cleansing, transformation, and storage (cloud, on-prem, or hybrid).

  • Strong background in feature engineering, data analysis, and data visualization—comfortable using tools like Jupyter, Tableau, or Power BI.

  • Great communicator who documents solutions clearly and collaborates effortlessly across technical and non-technical teams.

  • Able to balance speed and quality, stay curious about new developments, and deliver results in a fast-moving environment.

  • Bachelor’s or Master's degree in computer science, Engineering, Mathematics, Data Science, or a related field.

Dyson is an equal opportunity employer. We know that great minds don’t think alike, and it takes all kinds of minds to make our technology so unique. We welcome applications from all backgrounds and employment decisions are made without regard to race, colour, religion, national or ethnic origin, sex, sexual orientation, gender identity or expression, age, disability, protected veteran status or other any other dimension of diversity.

Skills Required

  • 8+ years of professional experience in Machine Learning engineering
  • Proficiency in Python and Machine Learning stack
  • Experience with Weak Supervision and Active Learning strategies
  • Experience with SQL and NoSQL databases
  • Familiarity with AWS, GCP, or Azure ML
  • Experience with DVC or similar tools
  • Hands-on expertise building auto-labelling solutions
  • Experience designing and maintaining scalable data pipelines
  • Strong background in feature engineering and data visualization
  • Bachelor's or Master's degree in related field

Dyson Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Dyson and has not been reviewed or approved by Dyson.

  • Healthcare Strength Medical, dental, and vision offerings are broad, paired with company‑paid life and disability coverage, plus EAP, backup care, and wellness incentives. Employer‑funded healthcare dollars and premium‑discount or Lifestyle Spending Account options further enhance coverage value.
  • Retirement Support A 401(k) with a company match is consistently advertised on U.S. postings. This provides predictable retirement support across roles.
  • Wellbeing & Lifestyle Benefits Wellbeing programs, commuter benefits, and notable product discounts supplement core coverage. Wellness incentives and a Lifestyle Spending Account expand lifestyle support beyond medical plans.

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The Company
Chicago, Illinois
13,356 Employees
Year Founded: 1993

What We Do

At Dyson we are focused on solving the problems that others have ignored; solving them first using our technology and ingenuity. In order to achieve this we need to pioneer technologies that are different and authentic. This is the core of what we do and who we are. We must strive to create the future, every single day by developing new things, different things, things that go against the grain with a diverse and global team of ingenious minds. Dyson employs over 14,000 people and is present in more than 80 countries. And while we are growing fast we want Dyson to remain a start-up in spirit with the freedom of experimentation and learning, constantly reinventing our products as well as reinventing how we work, how we sell and how we support our owners. At the same time we are working through the James Dyson Foundation, James Dyson Award and Dyson Institute to inspire future engineers and pioneering a new approach to engineering education. Underlining everything we do in this diverse environment is the need to always show respect, supporting each other as one team to overcome whatever challenges we encounter. We drive empowerment, development and equality in an inclusive environment for our people around the world. The future doesn’t just happen, we look to make it happen, to achieve leaps through pioneering new ideas

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