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Ensign InfoSecurity

Senior Machine Learning Ops Engineer

Reposted 15 Days Ago
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In-Office
Singapore, SGP
Mid level
In-Office
Singapore, SGP
Mid level
Design, build, and operate an in-house AIOps/ML/LLM platform across cloud and on-prem Kubernetes. Implement production ML/LLM workflows (training, deployment, inference, monitoring, rollback). Troubleshoot across application, infrastructure, networking, Linux, Kubernetes, and ML serving layers. Collaborate with cross-functional teams to translate client, security, and compliance requirements into platform designs.
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Ensign is hiring !

Key Responsibilities

- Own the design, development, maintenance, and evolution of the in-house AIOps / ML / LLM platform, including related cloud and on-premise Kubernetes solutions.

- Translate client, security, compliance, and internal requirements into practical platform designs with cross-functional teams.

- Build and operate production ML / LLM workflows, including retraining, deployment, inference serving, monitoring, rollback, and optimisation.

- Troubleshoot production issues across application, infrastructure, networking, Linux, Kubernetes, and ML serving layers.

Qualifications / Requirements

- Strong software/platform engineering fundamentals, including system design, API design, distributed systems, scalability, reliability, observability, authentication/authorization, testing, and maintainable code design.

- Practical understanding of the ML / LLM lifecycle, including data pipelines, model training/retraining, evaluation, experiment tracking, deployment, monitoring, and production feedback loops.

- Strong development experience in Python, with working proficiency in Go and C++ for reading, debugging, maintaining, and extending existing production codebases.

- Strong Linux, networking, and Kubernetes fundamentals, including production troubleshooting, service connectivity, ingress, resource limits, workload debugging, and deployment operations.

- Experience designing, deploying, and operating production platforms on AWS, Azure, GCP, or on-premise environments.

- Experience building CI/CD, automation, and MLOps / LLMOps workflows for production ML / LLM systems.

- Strong communication skills and ability to work with AI, deployment, infrastructure, and security teams.

Good to Have

- Deep experience operating Kubernetes in bare-metal, air-gapped, or restricted on-premise environments.

- Experience with MLflow, Kubeflow, vLLM, TensorRT, TGI, or similar ML / LLM platform tools.

- Exposure to TypeScript / React or Java-based services.

HQ

Ensign InfoSecurity Singapore, Singapore, SGP Office

Singapore, Singapore

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