Software DevOps Engineer - Gen Software and ML software

Ubifly Technologies

Chennai District

On-site

INR 3,000,000 - 7,000,000

Full time

12 days ago
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Job summary

The ePlane Company, incubated at IIT Madras, is seeking a Software DevOps Engineer focused on MLOps to own our ML production infrastructure. You will shape CI/CD for ML models, manage Kubernetes clusters, and connect software with AI deployments in a hybrid on-prem/cloud setup.

Responsibilities include data pipelines for model training, monitoring live AI/ML health, and ensuring governance across data provenance and model explainability in regulated environments.

Qualifications

  • 4+ years MLOps or ML infrastructure engineering with production systems experience
  • CI/CD design and implementation for ML systems (MLflow, DVC, Weights & Biases, or equivalent)
  • Deep expertise in Kubernetes cluster management, service mesh, and cloud/on-prem hybrid infrastructure
  • Proven experience in setting up CI/CD pipelines for both non-ML software and ML models

Responsibilities

  • Build and maintain data pipelines for model training, validation, and continuous retraining
  • Instrument, monitor, and manage the operational health of the AI/ML capabilities in production including performance, drift, latency, and data quality
  • Build CI/CD pipelines, model versioning, rollback procedures, and A/B testing infrastructure
  • Manage the container orchestration layer and server-side configurations to ensure high availability for internal tools and product operations suites
  • Lead the feasibility assessment and the implementation of on-premise AI deployment
  • Own the qualification and governance documentation process across data provenance, model architecture, explainability, and human oversight procedures, robustness testing with applicable regulatory frameworks
  • Establish and operate a recurring governance review process across all deployed capabilities

Skills

MLOps
CI/CD for ML
Kubernetes
ML systems

Tools

MLflow
DVC
Weights & Biases

Job description

Software DevOps Engineer - Gen Software and ML software

The ePlane Company is at the forefront of India's urban air mobility revolution. Incubated at IIT Madras, we are a deep-tech startup dedicated to designing and building the world's most compact electric flying taxi. Our mission is to make door-to-door flying a reality, drastically reducing commute times and decongesting our cities for a cleaner, greener future. We're a passionate team of engineers, designers, and visionaries working on cutting-edge technology, and we're looking for brilliant minds to help us take flight.

Chart the Course for the Future of Flight

We are looking for a person with a deep understanding of the tooling and lifecycle of ML based systems algorithms including taking them from prototype to production. The selected candidate will own the integrated DevOps and MLOps infrastructure. You will bridge the gap between software engineering, IT infrastructure, and AI-driven model deployment. This also involves work that makes our entire CI/CD pipeline from general software services to safety-critical AI/ML models robust, scalable, compliant, and qualified for regulated engineering processes. This includes instrumenting and hardening live capabilities, and the strategic work of designing a path toward on-premise deployment and formal AI qualification.

Roles and Responsibilities
  • Build and maintain data pipelines for model training, validation, and continuous retraining
  • Instrument, monitor, and manage the operational health of the AI/ML capabilities in production including performance, drift, latency, and data quality.
  • Build CI/CD pipelines, model versioning, rollback procedures, and A/B testing infrastructure
  • Manage the container orchestration layer and server-side configurations to ensure high availability for internal tools and product operations suites
  • Lead the feasibility assessment and the implementation of on-premise AI deployment
  • Own the qualification and governance documentation process across data provenance, model architecture, explainability, and human oversight procedures, robustness testing with applicable regulatory frameworks
  • Establish and operate a recurring governance review process across all deployed capabilities
Requirements
Required Qualifications
  • 4+ years MLOps or ML infrastructure engineering with production systems experience
  • CI/CD design and implementation for ML systems (MLflow, DVC, Weights & Biases, or equivalent)
  • Deep expertise in Kubernetes cluster management, service mesh, and cloud/on-prem hybrid infrastructure
  • Proven experience in setting up CI/CD pipelines for both non-ML software and ML models
Preferred Qualifications
  • Experience deploying ML systems in Safety-critical or regulated domain background where AI output quality must be explainable
  • Familiarity with change management processes in regulatory environments
  • RAG system infrastructure experience at scale
  • Cloud compute job queue management for computationally intensive workloads
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