
AI Platform Engineer
Posted Aug 27

Posted Aug 27
This is a fully remote position, open to applicants in United Kingdom.
• Design, develop, implement, and sustain scalable platform capabilities for enterprise AI, machine learning, LLM, RAG, and agentic AI applications.
• Create reusable reference architectures, infrastructure patterns, deployment templates, integration components, and engineering standards.
• Establish secure integrations with the Anthropic API, Claude models, enterprise data, APIs, workflow systems, and authorized tools.
• Develop CI/CD, LLMOps, MLOps, versioning, testing, release-management, rollback, monitoring, and lifecycle-management practices.
• Provide support for production AI services through incident response, troubleshooting, root-cause analysis, capacity planning, and service-level monitoring.
• Design and oversee cloud infrastructure across AWS, Microsoft Azure, Google Cloud Platform, or other client-approved environments.
• Implement infrastructure as code, containerized deployments, identity and access controls, logging, monitoring, auditing, vulnerability management, disaster recovery, and business continuity.
• Create secure data ingestion, transformation, indexing, retrieval, and RAG pipelines.
• Enforce responsible AI safeguards, observability, tracing, output validation, source attribution, approval gates, and human-in-the-loop workflows.
• Build integrations between AI platforms, ServiceNow, enterprise APIs, identity providers, workflow tools, collaboration platforms, and business systems.
• Collaborate with AI Architects, AI/ML Engineers, Data Engineers, ServiceNow developers, Product Engineering, and client technology teams.
• Contribute to technical documentation, playbooks, runbooks, reference architectures, reusable modules, demos, architecture reviews, and customer workshops.
• Transform recurring client requirements into scalable platform features and accelerators.
• A minimum of 5 years of experience in platform engineering, cloud engineering, DevOps, software engineering, data engineering, systems integration, or related technical roles.
• Practical experience in designing and deploying cloud-native applications and services on AWS, Microsoft Azure, and/or Google Cloud Platform.
• Strong background with CI/CD, Git-based workflows, automated testing, infrastructure as code, and production release processes.
• Experience with Docker, Kubernetes, serverless services, or similar cloud-native platforms.
• Proficiency in programming and scripting languages such as Python, JavaScript/TypeScript, Java, Go, Bash, or similar.
• Experience in designing and consuming REST APIs and implementing authentication and authorization patterns.
• Hands-on experience with LLM-powered applications, generative AI services, AI/ML platforms, RAG systems, or AI workflow automation.
• Familiarity with prompt and context engineering, token management, embeddings, vector search, structured outputs, tool use/function calling, evaluations, and model monitoring.
• Experience with logging, metrics, tracing, alerting, and incident management.
• Strong knowledge of cloud security, identity and access management, secrets management, network security, and secure software-development practices.
• Experience with relational databases, NoSQL databases, data warehouses, object storage, search platforms, or vector databases.
• Excellent problem-solving, troubleshooting, communication, and documentation skills.
• Capacity to work effectively in a fast-paced, collaborative, customer-oriented environment.
• Bachelor’s degree in Computer Science, Engineering, Information Systems, Data Science, or a related technical discipline; equivalent relevant professional experience will also be considered.
• Relevant certifications are advantageous.
• Competitive salary and performance-based incentives.
• Comprehensive health, dental, and vision insurance.
• Flexible working hours and remote work options.
• Opportunities for professional development and continuous learning.
• A collaborative and innovative work environment.
MAIA
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