Senior Software Development Engineer DevOps - Video Insights

JioStar

Bengaluru

On-site

INR 300,000 - 600,000

Full time

6 days ago
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Job summary

JioStar in Bengaluru is seeking a Senior DevOps Engineer to design and operate scalable AI/ML infrastructure for video workloads. You will build cloud-native systems, optimize GPU deployments, and enhance reliability and developer experience.

Join the Video CoE to enable rapid model training, evaluation, and serving at scale while implementing observability, security, and cost governance across distributed platforms.

Qualifications

  • 4+ years of infrastructure, DevOps, or cloud platform engineering experience.
  • Deep hands-on expertise with Kubernetes and container orchestration (Docker, Kubernetes).
  • Expert proficiency in at least one major cloud platform (AWS, GCP, or Azure).
  • Strong programming background in Python, Go, or similar languages.

Responsibilities

  • Design and implement robust, scalable cloud infrastructure for deploying video AI models and services.
  • Build and maintain Kubernetes clusters and containerized deployment pipelines optimized for GPU workloads.
  • Establish monitoring, logging, and observability systems for AI/ML production services.
  • Develop infrastructure-as-code practices and automation for rapid, reliable deployment.
  • Optimize cloud costs while maintaining performance and reliability standards.
  • Work with ML engineers to develop efficient MLOps pipelines for model training, evaluation, and serving.
  • Establish and maintain security, compliance, and data governance practices for AI systems.
  • Mentor engineering teams on infrastructure best practices and cloud architecture patterns.
  • Drive incident response, postmortems, and continuous improvement of system reliability.

Skills

Distributed systems design
Python/Go programming
Cloud platforms (AWS/GCP/Azure)
CI/CD practices
Monitoring and observability

Education

Bachelor's or Master's in Computer Science or related

Tools

Kubernetes
Docker
Terraform
CloudFormation
Helm
Kubeflow
MLflow
Ray

Job description

Job Description:


Job Summary:

You are a systems-oriented engineer passionate about building reliable, scalable infrastructure for AI and ML workloads. You have deep expertise in cloud platforms, containerization, and distributed systems. You thrive on solving complex operational challenges and are motivated by enabling engineering teams to ship reliably and efficiently. You constantly seek to improve systems for reliability, observability, and developer experience.


The pace of our growth is incredible – if you want to build world-class infrastructure for cutting-edge video AI systems at scale, join us!


About the team:

Join our Video CoE as a Senior DevOps Engineer and build the infrastructure that powers next-generation video AI systems. You'll architect and maintain systems that enable ML engineers to rapidly iterate and deploy state-of-the-art video understanding models at massive scale. This role combines deep systems expertise with exposure to cutting-edge AI technology, offering the opportunity to shape how modern video AI infrastructure is built and deployed.


Key Responsibilities:


  • Design and implement robust, scalable cloud infrastructure for deploying video AI models and services

  • Build and maintain Kubernetes clusters and containerized deployment pipelines optimized for GPU workloads

  • Establish monitoring, logging, and observability systems for AI/ML production services

  • Develop infrastructure-as-code practices and automation for rapid, reliable deployment

  • Optimize cloud costs while maintaining performance and reliability standards

  • Work with ML engineers to develop efficient MLOps pipelines for model training, evaluation, and serving

  • Establish and maintain security, compliance, and data governance practices for AI systems

  • Mentor engineering teams on infrastructure best practices and cloud architecture patterns

  • Drive incident response, postmortems, and continuous improvement of system reliability


Skills and attributes for success:


  • 4+ years of infrastructure, DevOps, or cloud platform engineering experience

  • Deep hands-on expertise with Kubernetes and container orchestration (Docker, Kubernetes)

  • Expert proficiency in at least one major cloud platform (AWS, GCP, or Azure)

  • Strong programming background in Python, Go, or similar languages

  • Deep understanding of distributed systems, networking, and storage concepts

  • Experience with GPU infrastructure, CUDA, or other accelerated computing environments

  • Hands-on experience with ML infrastructure tools and frameworks (Kubeflow, MLflow, Ray, or similar)

  • Strong understanding of infrastructure-as-code tools (Terraform, CloudFormation, Helm)

  • Experience with CI/CD pipelines and automation frameworks

  • Passion for monitoring, logging, and observability – experience with Prometheus, ELK, Datadog, or similar

  • Experience with database and storage systems optimization for large-scale workloads


Preferred education and experience:


  • Bachelors/Masters in Computer Science or a related field with 4-7 years of professional experience.

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