Senior AI/ML Engineer

Via Licensing Corporation

Bengaluru

On-site

INR 4,000,000 - 7,000,000

Full time

3 days ago
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Job summary

Dolby is hiring a Senior AI Engineer to design and own data pipelines, platform services, and ML systems used by researchers, data scientists, and product teams. You will work across the full lifecycle from ingestion to deployment, with hands-on ownership in production Kubernetes and Databricks environments.

The role requires building ML-ready data platforms, maintaining data quality, and enabling scalable ML workflows while collaborating across teams to deliver impactful media intelligence and

Qualifications

  • 5+ years in data engineering or AI engineering
  • Proficiency in Python, Scala, or Java
  • Production ML/AI pipelines experience
  • Databricks and lakehouse experience with Spark optimization
  • Ray/Apache Spark or equivalent distributed processing frameworks experience
  • Kubernetes: production workload management expertise
  • Cloud platforms (AWS, GCP, Azure) data services
  • Advanced SQL skills for data manipulation and analysis
  • Relational and NoSQL database knowledge
  • Data architecture and lakehouse/warehouse patterns

Responsibilities

  • Build and operate ML-ready data systems and data pipelines for researchers and ML engineers
  • Deploy and support production AI/ML systems and model deployment workflows
  • Own end-to-end ETL/ELT pipelines from real-time streams to lakehouse storage
  • Run production workloads on Kubernetes and ensure performance and reliability
  • Develop platform APIs, SDKs, and reusable data tooling for teams
  • Ensure data quality, governance, and metadata cataloging across the org

Skills

Data engineering
Python
Scala/Java
ML pipelines
Databricks
Apache Spark
Kubernetes
Cloud platforms
SQL
Data modeling
Data lakehouse
Event-driven systems

Education

Master's degree in CS/Engineering/Data Science

Tools

Databricks
Apache Spark
Kubernetes
Docker
Airflow
MLflow

Job description

Join the leader in entertainment innovation and help us design the future. At Dolby, science meets art, and high tech means more than computer code. As a member of the Dolby team, you’ll see and hear the results of your work everywhere, from movie theaters to smartphones. We continue to revolutionize how people create, deliver, and enjoy entertainment worldwide. To do that, we need the absolute best talent. We’re big enough to give you all the resources you need, and small enough so you can make a real difference and earn recognition for your work. We offer a collegial culture, challenging projects, and excellent compensation and benefits, not to mention a Flex Work approach that is truly flexible to support where, when, and how you do your best work.

At Dolby, we’re changing the way the world experiences sight and sound. We enable people to experience music and movies; videos and pictures in all its intended grandeur and make life & work more meaningful and immersive. We give technology to the world’s content creators, owners, and distributors; manufacturers of TV, Mobile, and PC; and social and media platforms; so that they can truly delight their customers. We're the ones behind the astounding sound and sight experiences in the movie theaters and in your living room; on your mobile phones and on the internet.

About the Role

Dolby's Data & AI Platform team builds the systems that powers machine learning and analytics across the company, from codec telemetry spanning billions of devices to the media pipelines behind Dolby Atmos and Dolby Vision. Our data is high-volume, real-time, and deeply tied to how people experience sound and image worldwide.

We're hiring a Senior AI Engineer to design and own the data pipelines, platform services, and ML systems that our researchers, data scientists, and product teams depend on daily. You'll work across the full lifecycle, from ingestion through model deployment on systems that run at scale in production Kubernetes and Databricks environments. This is a hands‑on engineering role with real ownership. You'll build things, put them in production, and keep them running.

What You'll Do
  • Build and operate ML-ready data systems. Create the data preparation, feature generation, and training pipelines that AI researchers and ML engineers use to take models from experiment to production. Own data versioning, validation, and reproducibility for ML workflows.
  • Deploy and support production AI/ML systems. Build and maintain the pipelines that serve model training, testing, validation, deployment, and inference in production. Partner with ML engineers to operationalize models reliably.
  • Own data systems end-to-end. Design, build, and operate ETL/ELT pipelines that ingest data from real-time event streams, third-party APIs, and media-rich sources into our lakehouse architecture. Own throughput, latency, reliability, and cost.
  • Run production workloads on Kubernetes. Deploy, monitor, and troubleshoot containerized data services and distributed processing applications in cloud-native Kubernetes environments.
  • Develop platform and data products. Build SDKs, APIs, and reusable frameworks that make it easy for other engineering and research teams to access data and adopt the platform.
  • Ensure data quality and governance. Implement validation, reconciliation, and monitoring processes. Maintain data catalogs and metadata so teams can discover, trust, and reuse data assets across the organization.
  • Improve observability and operational health. Design monitoring, alerting, and logging for pipelines and infrastructure. You'll be expected to catch problems before users do.
What You Bring
Required
  • 5+ years in data engineering, data platform engineering, AI engineering or a closely related field.
  • Expert-level proficiency in at least one major programming language such as Python, Scala, or Java.
  • Production ML/AI pipelines: you have personally built or co-built pipelines that took models through training, testing, validation, and deployment into production.
  • Databricks: hands‑on production experience with Lakehouse architecture, Delta Lake, Spark optimization, and Workflows. Experience managing large‑scale, heterogeneous datasets on Databricks.
  • Ray / Apache Spark (or equivalent distributed processing framework): deep, production‑scale experience building and optimizing data pipelines.
  • Kubernetes: hands‑on experience deploying, operating, and troubleshooting production workloads - not just deploying onto clusters, but understanding how they run.
  • Cloud platforms: strong experience with AWS, GCP, or Azure and their data services.
  • SQL Mastery: Advanced SQL skills for data manipulation, analysis, and optimization.
  • Database Knowledge: Solid understanding of relational and NoSQL databases.
  • Data Architecture: solid understanding of data modeling, schema design, and lake/lakehouse/warehouse patterns.
  • Event‑driven systems: Experience with messaging, pub/sub, queues, or streaming platforms.
Preferred
  • Experience with MLOps tooling (MLflow, Airflow, Kubeflow, Feast, or similar).
  • Familiarity with feature stores, vector databases, embedding pipelines, or retrieval systems.
  • Experience on batch and online inference workloads with an understanding of latency sensitive environments.
  • Experience supporting generative AI, LLM, or multimodal AI workloads.
  • Optimized GPU utilization during model training or fine‑tuning.
  • Understanding of distributed computing fundamentals - concurrency, consistency and fault tolerance.
  • CI/CD practices and Infrastructure-as-Code.
  • Contributions to open‑source data or AI projects.
Education

Master’s or Bachelor's degree in Computer Science, Engineering, Data Science, or a related field, or equivalent professional experience.

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