Head of Machine Learning Operations

CarTrawler

Dublin

On-site

EUR 80,000 - 100,000

Full time

14 days+

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Job summary

A leading technology firm in Dublin seeks an MLOps Lead to drive overall MLOps strategy while collaborating with senior leadership. You will develop innovative software tools and ensure continuous improvement of architecture. The ideal candidate has a strong background in Python, cloud computing, and DevOps practices. This role offers the ability to mentor team members and act as a strategic advisor within a dynamic environment.

Qualifications

  • Solid understanding of DevOps practices or software engineering.
  • Strong ability to coach high-performing DevOps Engineers.
  • Expertise in writing production-level Python code.

Responsibilities

  • Drive the overall MLOps strategy in collaboration with senior leadership.
  • Lead the development of innovative software tools for Data Science.
  • Ensure architecture is continuously improved and evaluate emerging technologies.

Skills

Python coding
DevOps practices
Cloud computing (AWS, Google Cloud)
Containerization (Docker, Kubernetes)
Software engineering best practices

Education

M.S. or Ph.D. in a relevant technical field
5+ years of experience in a relevant role

Tools

AWS
Docker
Kubernetes
Jenkins
Python

Job description

Role Purpose:
  • Drive the overall MLOps strategy along with other members of the Data Science & Insights (DS&I) team, while also collaborating with senior leadership to align strategies with broader organizational goals and objectives.
  • Lead the development of innovative software tools to service both our Data Science solutions and wider business operations using relevant cutting‑edge technologies (e.g. AWS, Git, Docker, Kubernetes, Jenkins)
  • Ensure the architecture is continuously improved and evaluate emerging technologies and trends to maintain a competitive edge in the market
  • Lead the development of tools/services that support critical operations such as release management, source code management, CI/CD pipelines, automation, serving ML models to production environments and many other key operations while also overseeing the integration of these solutions into our broader technology ecosystem.
  • Champion ML model‑governance by establishing a full end‑to‑end lifecycle governance framework to ensure models are monitored, refreshed and performing at optimal levels over time.
  • Collaborate closely with key stakeholders across various business functions, including Product & Technology (P&T), IT, and Developer Experience (DX) teams, to develop and prioritize a strategic Data Science DevOps roadmap that aligns with organizational objectives and drives innovation.
  • Mentor and coach team members, providing guidance, support, and expertise on advanced MLOps practices, while also serving as a point of escalation for complex technical challenges and issues.
  • Act as a strategic advisor to senior leadership, providing insights, recommendations, and strategic direction on Data Science MLOps initiatives, while also championing a culture of continuous learning, growth and innovation within the organization.

Reporting to: Director of Data Science & Insights

Key Duties & Responsibilities
  • Working closely with other team leads across the business to prioritize your team’s work
  • Liaising with other engineering colleagues across the business to ensure alignment across the organization
  • Representing Data Science & Insights in engineering/technology discussions across the business
  • Conducting research on Machine Learning, Engineering and DevOps to ensure our tech stack is continually improving and aligning with best practices
Leading your team in developing industry‑leading MLOps solutions through:
  • Identifying detailed requirements, sources, and structures to support solution development
  • Determining the optimal solutions and technologies to use to solve the problem at hand
  • Ensuring solutions are implemented with best engineering practices in mind (CI/CD, unit tests, integration tests, logging, monitoring, etc.)
  • Developing scalable solutions that can be integrated into production environments if required
  • Collaborating in the development and deployment of proposed solutions to a live environment and tracking the effects in real time
Managing and maintaining existing DS tools/platforms/infrastructure
  • MVT – An in‑house built multivariate testing platform
  • ACDC – Our solution for deploying ML to production
  • Action Factory – An in‑house built automated decision‑making tool
  • Echo – Our in‑house built MLOps pipeline tool
  • Several in‑house built Python libraries
  • Effectively communicate outputs to other team members and the wider business in a concise manner that can be understood by both technical and non‑technical audiences
  • Keep up to date with the latest techniques, technologies and trends and identify opportunities within the business where they could be applied
  • Developing leading POCs to create breakthrough solutions, performing exploratory and targeted data analyses
Knowledge and Key Skills
  • M.S. or Ph.D. in a relevant technical field, or 5+ years’ experience in a relevant role.
  • Solid understanding of DevOps practices or full‑stack software engineering in general
  • Some experience of leading a team or keen interest in becoming a People Manager along with strong ability to coach high‑performing DevOps Engineers
  • Expertise in writing production‑level Python code
  • Expertise in cloud computing services like AWS, Google Cloud, etc.
  • Expertise in Containerisation technologies like Docker, Kubernetes, etc.
  • Expertise in software engineering practices: design pattern, data structure, object‑oriented programming, version control, QA, logging & monitoring, etc.
  • Expertise in writing unit tests and developing integration tests to ensure quality of the product
  • Experience and knowledge of Infrastructure as Code best practices
  • Experience in developing GenAI tools seen as a plus point
  • Knowledge of leading cross‑function projects and R&D projects
  • Knowledge of agile project management
  • Ability to communicate complex tools and technologies in a clear, precise and actionable manner, both verbally and in presentation format, to a broad variety of functional leaders
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