Machine Learning Engineer (hybrid or remote)
Machine Learning Engineer (hybrid or remote)

Machine Learning Engineer (hybrid or remote)

Full-Time 60000 - 80000 £ / year (est.) Home office (partial)
Ampstek

At a Glance

  • Tasks: Design and implement AI algorithms, manage data pipelines, and optimise AI model performance.
  • Company: Join AmpsTek, a global tech leader transforming business technology solutions.
  • Benefits: Hybrid work model, competitive salary, and opportunities for professional growth.
  • Other info: Work with cutting-edge technologies in a supportive and creative culture.
  • Why this job: Be at the forefront of AI innovation and make a real impact in a dynamic environment.
  • Qualifications: Experience in machine learning, data processing, and collaboration with tech teams.

The predicted salary is between 60000 - 80000 £ per year.

AmpsTek – a global technology leader since 2013 – is transforming how businesses approach technology and staffing solutions. Founded by seasoned technology leaders across the UK, Europe, APAC, North America, and LATAM, and with registered offices in 30+ countries, we deliver exceptional service, scalable solutions, and measurable impact. With a portfolio of 200+ clients and millions of users across web and mobile platforms, we empower businesses to innovate, grow, and succeed. Join our team and be part of a dynamic, growth-oriented organization that values talent, creativity, and results.

Role: ML Engineer

Location: London, UK (Hybrid 3 days/week)

Contract (Inside IR35)

  • AI Model design and build: Work closely with data scientists and business to design and implement AI algorithms, frameworks and architectures.
  • AI model Data Preprocessing: Design, build, and maintain robust ETL/ELT pipelines to ingest, transform, and load data from various sources.
  • AI model Feature Engineering: Integrate structured and unstructured data from internal and external systems into centralized data platforms.
  • Performance Tuning of AI models: Optimize data workflows and queries for performance, scalability, and cost-efficiency.
  • Building Agentic Systems: Developing intelligent AI agents that can reason, plan, and execute tasks autonomously using LLMs and other tools.
  • LLM application Development: LLM fine-tuning adapting pretrained LLMs for specific tasks using techniques like parameter-efficient fine-tuning (PEFT).
  • Responsible AI: Build AI systems which are trustworthy and beneficial considering ethical principles such as fairness, transparency, accountability, privacy and reliability.
  • AI Model Deployment and Lifecycle Management: Orchestrate robust and error-free deployment of AI models into production environments, making them accessible to applications and users.
  • Automation and Pipeline Management: Create and manage automated pipelines for AI workflows including training, testing and deployment.
  • Monitoring and Maintenance: Set up monitoring systems to track key metrics such as prediction accuracy, response times, resource utilization, and error rates of deployed models.
  • Infrastructure Management: Manage the infrastructure required for training, testing, and running AI models in production, including provisioning hardware and software resources, leveraging cloud platforms and containerization technologies like Docker and Kubernetes.
  • Data and Model Versioning and Rollback: Implement version control for data and models, allowing for tracking changes, testing older versions, and ensuring reproducibility.
  • Collaboration and Communication: Collaborate extensively with data scientists, software engineers, and DevOps teams to ensure smooth integration of AI models.

Machine Learning Engineer (hybrid or remote) employer: Ampstek

At AmpsTek, we pride ourselves on being a forward-thinking employer that champions innovation and creativity in the tech industry. Our London-based team enjoys a hybrid work model, fostering a collaborative culture that encourages professional growth and development through hands-on experience with cutting-edge AI technologies. With a commitment to ethical AI practices and a diverse portfolio of clients, we offer our employees the opportunity to make a meaningful impact while enjoying a supportive and dynamic work environment.
Ampstek

Contact Detail:

Ampstek Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Machine Learning Engineer (hybrid or remote)

✨Tip Number 1

Network like a pro! Reach out to your connections in the tech industry, especially those who work at AmpsTek or similar companies. A friendly chat can sometimes lead to job opportunities that aren't even advertised yet.

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your AI models and projects. This is your chance to demonstrate your expertise in machine learning and make a lasting impression on potential employers.

✨Tip Number 3

Prepare for interviews by brushing up on common ML concepts and algorithms. We recommend practicing coding challenges and discussing your past projects to highlight your problem-solving skills and experience.

✨Tip Number 4

Don't forget to apply through our website! It’s the best way to ensure your application gets noticed. Plus, it shows you're genuinely interested in joining our dynamic team at AmpsTek.

We think you need these skills to ace Machine Learning Engineer (hybrid or remote)

AI Model Design
ETL/ELT Pipeline Development
Feature Engineering
Performance Tuning
LLM Fine-Tuning
Automation and Pipeline Management
CI/CD Implementation
Monitoring Systems Setup
Infrastructure Management
Data Governance
Collaboration Skills
Communication Skills
Cloud Platforms
Containerization Technologies (Docker, Kubernetes)
Ethical AI Principles

Some tips for your application 🫡

Tailor Your CV: Make sure your CV is tailored to the Machine Learning Engineer role. Highlight relevant experience, especially in AI model design and data preprocessing. We want to see how your skills align with what we're looking for!

Craft a Compelling Cover Letter: Your cover letter is your chance to shine! Use it to explain why you're passionate about AI and how your background makes you a great fit for our team. Keep it concise but impactful – we love a good story!

Showcase Your Projects: If you've worked on any cool projects related to AI or machine learning, make sure to mention them! We’re keen to see your hands-on experience, so include links or descriptions of your work that demonstrate your skills.

Apply Through Our Website: We encourage you to apply through our website for the best chance of getting noticed. It helps us keep track of applications and ensures you’re considered for the role. Plus, it’s super easy!

How to prepare for a job interview at Ampstek

✨Know Your AI Models Inside Out

Make sure you’re well-versed in the AI algorithms and frameworks mentioned in the job description. Brush up on your knowledge of LLMs, ETL/ELT pipelines, and performance tuning techniques. Being able to discuss specific projects where you've implemented these will show your expertise.

✨Showcase Your Collaboration Skills

Since the role involves working closely with data scientists and business teams, prepare examples that highlight your teamwork. Think of times when you successfully collaborated on a project, especially in developing or deploying AI models. This will demonstrate your ability to communicate effectively across different teams.

✨Prepare for Technical Questions

Expect technical questions related to AI model deployment, lifecycle management, and infrastructure management. Review common challenges faced in these areas and be ready to discuss how you’ve tackled similar issues in the past. Practising coding problems related to machine learning can also give you an edge.

✨Understand Responsible AI Principles

Familiarise yourself with ethical principles in AI, such as fairness, transparency, and accountability. Be prepared to discuss how you would implement these principles in your work. Showing that you prioritise responsible AI will resonate well with the company’s values and mission.

Machine Learning Engineer (hybrid or remote)
Ampstek

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