Machine Learning Engineer
Machine Learning Engineer

Machine Learning Engineer

London Full-Time 28800 - 48000 £ / year (est.) No home office possible
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At a Glance

  • Tasks: Join our Personalization team to develop cutting-edge machine learning models and enhance product capabilities.
  • Company: Optimove is a leading marketing tech company, working with top brands like Sephora and Staples.
  • Benefits: Enjoy a vibrant startup culture, career growth opportunities, and access to state-of-the-art technologies.
  • Why this job: Be at the forefront of machine learning, making a real impact on customer personalisation across digital platforms.
  • Qualifications: Minimum 3 years experience in machine learning, strong Python skills, and familiarity with multi-modal data.
  • Other info: Work in a supportive team environment with regular time for research and experimentation.

The predicted salary is between 28800 - 48000 £ per year.

Optimove is a global marketing tech company, recognized as a Leader by Forrester and a Challenger by Gartner. We work with some of the world\’s most exciting brands, such as Sephora, Staples, and Entain, who love our thought-provoking combination of art and science. With a strong product, a proven business, and the DNA of a vibrant, fast-growing startup, we\’re on the cusp of our next growth spurt. It\’s the perfect time to join our team of ~500 thinkers and doers across NYC, LDN, TLV, and other locations, where 2 of every 3 managers were promoted from within. Growing your career with Optimove is basically guaranteed.

As a Machine Learning Engineer, you will be working within our Personalization team, helping to shape and drive the development of numerous products and initiatives that allow our customers to personalise messages across all digital touchpoints. This includes working with multi-modal data such as images, text, and more, leveraging cutting-edge technologies including Large Language Models (LLMs). This is an exciting opportunity at the forefront of machine learning, helping to bring Accessible Intelligence to our customers with great scope to make a key difference across both OptiX and Optimove\’s overall platforms.

We are looking for an experienced Machine Learning Engineer to work on incredibly interesting projects as we take our personalization capabilities to the next level. You will focus on developing and advancing ML/AI across our platforms, researching and investigating new machine learning applications within the company, and improving pre-existing models.

Role & Core Responsibilities

  • Own the model development and release process across all products and internal platforms, including both OptiX and Optimove.
  • Manage the cloud-hosted modelling environment.
  • Operationalize models as APIs working in real-time and batch environments.
  • Monitor production models, ensuring data quality and model performance.
  • Develop predictive machine learning models for classification, ranking, and personalization purposes, utilizing multi-modal data including images and text.
  • Leverage LLMs and other cutting-edge technologies to enhance product capabilities.
  • Research and investigate new machine learning applications within the company, and improve on pre-existing models.
  • Collaborate closely with product and development teams to define and prepare new ML applications.
  • Analyse performance and continuously improve scoring processes for hosted models.

Best Bits of the Job

  • Exposure to a phenomenal array of machine learning domains, including massive-scale search, ranking, NLP, hybridization, classification, multi-modal data processing (images, text, etc.), and far beyond.
  • Leveraging state-of-the-art technologies, including Large Language Models (LLMs), to enhance our products and services.
  • Fully real-time architecture for data processing, model development, and deployment.
  • Deploying and enhancing ML frameworks, optimizing for inference, and training/retraining cycles.
  • Online testing for models with live data using proprietary A/B/N testing technology to rapidly determine what works (and what doesn\’t).
  • A super-bright, supportive, and friendly machine learning team to work with in an environment where rapid experimentation is the norm.
  • Regular time allocated to research new methods, build and test proofs-of-concept, and deploy to production instantly if effective.
  • GPU support to efficiently train deep learning models.
  • Minimum 3 years of experience in a similar role.
  • Strong programming skills and a good understanding of software engineering principles and clean code practices.
  • Expert-level knowledge of Python for machine learning and data manipulation (pandas, NumPy).
  • Advanced experience with SQL for data querying and manipulation.
  • Experience with Git, Bash, Docker, and machine learning pipelines.
  • Experience with open-source machine learning libraries like scikit-learn, PyTorch, TensorFlow, and SciPy.
  • Hands-on experience working with multi-modal data (images, text) and relevant ML techniques.
  • Experience with cloud technologies and data storage solutions, including Snowflake.
  • Understanding of personalization for various domains, including sports betting and gaming, where it might add value and what best practices look like.
  • Full understanding of recommendation algorithms and their applications.
  • Professional experience in personalization and/or predictive CRM, and micro-segmentation.
  • Experience with CI/CD pipelines and Infrastructure as Code (IaC) tools (Terraform, Bicep, etc.).

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Machine Learning Engineer employer: Optimove

Optimove is an exceptional employer, offering a vibrant work culture that fosters innovation and collaboration among its ~500 employees across global locations like NYC and LDN. With a strong emphasis on employee growth, two-thirds of our managers have been promoted from within, ensuring ample opportunities for career advancement. Join us to work on cutting-edge machine learning projects in a supportive environment that encourages rapid experimentation and continuous learning.
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Contact Detail:

Optimove Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Machine Learning Engineer

✨Tip Number 1

Familiarise yourself with the latest advancements in machine learning, especially in areas like Large Language Models and multi-modal data processing. This knowledge will not only help you during interviews but also demonstrate your genuine interest in the role.

✨Tip Number 2

Engage with the machine learning community by attending relevant meetups or webinars. Networking with professionals in the field can provide insights into the company culture at Optimove and may even lead to referrals.

✨Tip Number 3

Prepare to discuss your hands-on experience with tools and technologies mentioned in the job description, such as Python, SQL, and machine learning libraries. Be ready to share specific examples of projects where you've successfully applied these skills.

✨Tip Number 4

Research Optimove's current products and initiatives, particularly their approach to personalisation. Understanding their business model and how they leverage machine learning will allow you to tailor your discussions and show how you can contribute to their goals.

We think you need these skills to ace Machine Learning Engineer

Machine Learning Model Development
Cloud Technologies Management
API Development for Real-Time and Batch Environments
Data Quality Monitoring
Predictive Modelling for Classification and Personalisation
Multi-Modal Data Processing (Images, Text)
Large Language Models (LLMs) Expertise
Collaboration with Product and Development Teams
Performance Analysis and Improvement
Python Programming for Machine Learning
Data Manipulation with Pandas and NumPy
SQL for Data Querying and Manipulation
Version Control with Git
Containerization with Docker
Experience with Open-Source ML Libraries (scikit-learn, PyTorch, TensorFlow)
Understanding of Personalisation Algorithms
Experience in Predictive CRM and Micro-Segmentation
CI/CD Pipeline Management
Infrastructure as Code (IaC) Tools (Terraform, Bicep)

Some tips for your application 🫡

Tailor Your CV: Make sure your CV highlights relevant experience and skills that align with the Machine Learning Engineer role. Focus on your programming skills, experience with multi-modal data, and familiarity with machine learning libraries like TensorFlow and PyTorch.

Craft a Compelling Cover Letter: Write a cover letter that showcases your passion for machine learning and how your background fits with Optimove's mission. Mention specific projects or experiences that demonstrate your ability to develop predictive models and work with cloud technologies.

Showcase Relevant Projects: If you have worked on any projects related to machine learning, especially those involving personalization or multi-modal data, be sure to include them in your application. Describe your role, the technologies used, and the impact of your work.

Highlight Continuous Learning: Mention any recent courses, certifications, or research you've undertaken in machine learning or related fields. This shows your commitment to staying updated with the latest technologies and methodologies, which is crucial for a role at the forefront of machine learning.

How to prepare for a job interview at Optimove

✨Showcase Your Technical Skills

As a Machine Learning Engineer, it's crucial to demonstrate your expertise in Python, SQL, and machine learning libraries like TensorFlow and PyTorch. Be prepared to discuss specific projects where you've applied these skills, especially in handling multi-modal data.

✨Understand the Company’s Products

Familiarise yourself with Optimove's offerings and how they leverage machine learning for personalisation. This knowledge will help you articulate how your skills can contribute to their goals and enhance their products.

✨Prepare for Problem-Solving Questions

Expect to face technical questions that assess your problem-solving abilities. Practice explaining your thought process clearly, especially when discussing model development, operationalising APIs, and monitoring model performance.

✨Emphasise Collaboration Experience

Highlight your experience working closely with product and development teams. Discuss how you've collaborated on defining new ML applications and improving existing models, as teamwork is key in this role.

Machine Learning Engineer
Optimove

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