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Machine Learning Engineer

Teknektar
Full-time
On-site
London, Greater London, United Kingdom
Our client, an ambitious <\/span>scale -up SaaS company<\/span><\/b> based in London, is seeking a talented <\/span>Machine Learning Engineer<\/span><\/b> to join their expanding engineering and data science team. This is an exciting opportunity to play a key role in building AI -powered products and shaping intelligent features within a fast -growing organisation that is redefining how businesses use SaaS technology.<\/span>
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As a Machine Learning Engineer, you will:
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  • Design, build, and deploy scalable machine learning models into production SaaS environments.
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  • Develop and optimise data pipelines for training, testing, and monitoring ML models.
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  • Collaborate with product managers, data scientists, and engineers to deliver AI -driven solutions.
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  • Ensure that all models are explainable, ethical, and aligned with core business goals.
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  • Contribute to MLOps best practices, improving model lifecycle management and deployment automation.
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  • Stay current with emerging trends in machine learning, generative AI, and data engineering.
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    Key Responsibilities:<\/span><\/div>
    • Build and maintain ML models supporting predictive analytics, recommendation engines, and automation features.
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    • Integrate ML solutions into scalable APIs and microservices architectures.
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    • Monitor and fine -tune model performance for real -world production systems.
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    • Work with large, complex datasets to ensure model accuracy and reliability.
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    • Produce technical documentation and share knowledge across the team.
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      Requirements<\/h3>
      Key Skills & Experience:<\/div>
      • Proven experience as a Machine Learning Engineer<\/b> or similar role in a production environment.
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      • Strong programming proficiency in Python<\/b>, using ML frameworks such as TensorFlow, PyTorch, or scikit -learn.
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      • Experience with cloud computing platforms (AWS, Azure, or GCP).
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      • Knowledge of MLOps tools and practices (e.g., MLflow, Kubeflow, or SageMaker).
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      • Strong database knowledge (SQL and NoSQL).
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      • Sound understanding of algorithms, data structures, and model optimisation.
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        Qualifications:<\/div>
        • Bachelor’s or Master’s degree<\/b> in Computer Science, Data Science, Mathematics, or a related field (or equivalent industry experience).
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        • Proven experience delivering ML models into production.
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        • Desirable: cloud or data certifications (AWS, GCP, or Azure).
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          Benefits<\/h3>
        • Competitive salary and potential equity options.
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        • Hybrid working from their central London office.
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        • Opportunity to develop AI -powered features for an innovative, fast -scaling SaaS product.
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        • Continuous learning culture with dedicated training budgets and mentorship.
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        • Collaborative, forward -thinking, and diverse company culture.
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