DevOps Engineer

Auric AI Labs

Bengaluru

On-site

INR 900,000 - 1,500,000

Full time

14 days+

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Job summary

Auric AI Labs in Bengaluru is seeking a DevOps Engineer to strengthen our infrastructure across on-prem, cloud, and security layers. You will work with the engineering team to mature the platform through observability, automated deployments, and robust CI/CD practices.

The role emphasizes DevOps fundamentals with a growing footprint in MLOps as our ML workflows move toward production-grade tooling. You will help design scalable, secure environments, contribute to containerization, IaC, and

Qualifications

  • 1+ years hands-on experience in DevOps, SRE, or infra roles.
  • Experience with Linux servers, provisioning, users/permissions, services, troubleshooting.
  • Familiarity with at least one cloud provider (AWS/GCP/Azure).
  • Experience with CI/CD pipelines and IaC tooling (Terraform, Ansible, etc.).
  • Understanding of networking concepts, security, and observability.

Responsibilities

  • Co-manage server infrastructure: provisioning, hardening, access control.
  • Design and implement CI/CD pipelines for automated testing and deployment.
  • Administer cloud resources, IAM, cost monitoring, and security configurations.
  • Establish observability with metrics, logging, alerting, and dashboards.
  • Support ML workflows with pipeline automation and model deployment tooling.

Skills

Networking
Linux admin
Cloud platforms
Scripting Bash/Python
CI/CD concepts
Observability

Tools

Docker
Kubernetes
GitHub Actions
Terraform

Job description

We're looking for a DevOps Engineer to co-manage and strengthen our infrastructure, spanning on-premises servers, network security, and our cloud environment. Working alongside the engineering team, you'll help mature our platform through improved observability, automated deployments, and robust CI/CD practices.

The core focus of this role is DevOps fundamentals, including infrastructure, networking, and automation, with a growing footprint in MLOps as our machine learning workflows move toward production-grade tooling.

Responsibilities
Infrastructure & Security:
  • Co-manage server infrastructure: provisioning, hardening, patching, backups, and access management
  • Support firewall and network security operations: rule management, VPN access, segmentation, and anomaly monitoring
  • Administer cloud resources: services, IAM, cost monitoring, and security configuration
Automation & Tooling:
  • Design and implement CI/CD pipelines for automated testing and deployment
  • Introduce infrastructure-as-code to make environments reproducible and well-documented (Terraform, Ansible, or similar)
  • Establish observability across servers, network, and applications: metrics, logging, alerting, and dashboards
  • Reduce manual operational work through automation
MLOps:
  • Support ML workflows with pipeline automation, experiment tracking, and model deployment tooling
  • Containerize and serve models, with monitoring for model and data health
  • Contribute to establishing reproducible, versioned ML practices
Requirements
  • 1+ years of hands-on experience in DevOps, systems administration, SRE, or infrastructure-focused roles
  • Working knowledge of networking and network security: firewalls, VPNs, DNS, TLS, ports/protocols, and hardening practices
  • Experience administering Linux servers (provisioning, users and permissions, services, troubleshooting)
  • Familiarity with at least one major cloud provider (AWS, GCP, or Azure)
  • Experience with containers (Docker) and scripting (Bash and/or Python)
  • Exposure to CI/CD concepts and tooling (GitHub Actions, GitLab CI, Jenkins, etc.)
  • Interest in MLOps and willingness to learn the ML lifecycle: training pipelines, model deployment, and monitoring
  • Strong ownership mindset and clear communication around security and reliability trade-offs
Nice to Have
  • Experience managing on-premises infrastructure (physical servers, local networking, hypervisors)
  • Hands-on exposure to MLOps tooling (MLflow, Kubeflow, Airflow, model serving frameworks)
  • Infrastructure-as-code experience (Terraform, Ansible, Pulumi)
  • Kubernetes or other container orchestration experience
  • Monitoring and observability stack experience (Prometheus, Grafana, Loki, ELK)
  • GPU workload or ML infrastructure exposure
  • Relevant certifications (cloud provider associate-level, networking, or security)
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