Design, build, and deploy AI-powered solutions using machine learning, deep learning, and generative AI technologies. Collaborate with product managers, data scientists, and software engineers to implement best practices for MLOps, CI/CD, and version control.
Key Highlights
Technical Skills Required
Benefits & Perks
Job Description
Job Title: AI Engineer
Location: Remote (United Kingdom)
Employment Type: Full-time, Permanent
Experience: 0–15 Years
Eligibility: Must have the right to work in the UK (No visa sponsorship available)
About The Role
We are seeking a passionate and technically strong AI Engineer to design, build, deploy, and maintain AI-powered solutions. This is a fully remote role within the UK, offering opportunities to work on real-world problems using machine learning, deep learning, and generative AI technologies. Responsibilities and scope will vary based on experience level.
Key Responsibilities
- Design, develop, and deploy machine learning and AI models for production use
- Build scalable data pipelines and feature engineering workflows
- Train, fine-tune, and evaluate ML and deep learning models
- Deploy and serve models via APIs and cloud-based infrastructure
- Monitor model performance, data quality, and model drift
- Work with large, structured and unstructured datasets
- Collaborate with product managers, data scientists, and software engineers
- Implement best practices for MLOps, CI/CD, and version control
- Ensure AI solutions align with security, privacy, and ethical standards
- Document models, workflows, and system architectures
- Strong programming skills in Python
- Solid understanding of machine learning algorithms and evaluation techniques
- Experience with deep learning frameworks (PyTorch, TensorFlow, or Keras)
- Proficiency in data processing and analysis (NumPy, Pandas)
- Experience building and consuming REST APIs
- Familiarity with cloud platforms (AWS, Azure, or GCP)
- Knowledge of Git and collaborative development workflows
- Understanding of data structures, algorithms, and software engineering principles
- Experience with Generative AI and LLMs (prompt engineering, fine-tuning, RAG)
- NLP or Computer Vision experience
- MLOps tools such as MLflow, Kubeflow, Airflow
- Containerisation using Docker and orchestration with Kubernetes
- Experience with vector databases (FAISS, Pinecone, Weaviate)
- Knowledge of responsible AI, explainability, and bias mitigation
- Experience with big data tools (Spark, Kafka)
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