Complexio's Foundational AI platform automates business processes by ingesting and understanding complete enterprise data--both structured and unstructured. Through proprietary models, knowledge graphs, and orchestration layers, Complexio maps human-computer interactions and autonomously executes complex workflows at scale.
Established as a joint venture between Hafnia and Simbolo--with partners including Marfin Management, C Transport Maritime, BW Epic Kosan, and Trans Sea Transport--Complexio is redefining enterprise productivity through context-aware, privacy-first automation.
We are seeking a versatile MLOps Engineer to bridge the gap between data science research and production-ready machine learning systems. This role requires a complete engineering skillset spanning Python development, cloud infrastructure, and collaborative work with research teams.
We're looking for a complete engineer who can seamlessly transition between writing production Python code, designing cloud architectures, and collaborating with researchers on cutting-edge ML projects. You should be equally comfortable debugging a Kubernetes deployment, optimising a training pipeline, and explaining technical trade-offs to data scientists.
Some of the Responsibilities include
Production ML Pipeline Development: Design, build, and maintain end-to-end ML pipelines from data ingestion to model deployment and monitoring
Infrastructure Management: Architect and manage scalable cloud infrastructure for ML workloads, including container orchestration and automated testing
Research Collaboration: Partner closely with data scientists and research teams to translate experimental models into robust, production-ready systems
DevOps Best Practices: Establish infrastructure as code, CI/CD pipelines, automated deployments, and comprehensive logging/monitoring
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