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Salary
$107k – $234k per year (Estimated)
Location
In office (Singapore)
Seniority
Senior
Employment
Full-Time
Overview
Company
Impact
Profile match
Western Digital is an American data storage company founded in 1970 that, since separating its flash memory business as SanDisk in early 2025, concentrates entirely on hard disk drives. Its drives are sold overwhelmingly to cloud and enterprise data centre operators rather than to consumers, and the company competes with Seagate in a market where areal density technologies such as shingled and heat-assisted recording determine cost per terabyte. Headquartered in San Jose and listed on Nasdaq, it has benefited from the sharp increase in storage demand created by artificial intelligence workloads.

WD is building the infrastructure behind the AI-driven data economy.

As AI scales, so does data. Every interaction, every model, every system generates data that must be stored, managed, and made accessible over time. That’s where we come in.

We combine deep engineering expertise with global-scale manufacturing to deliver the storage systems that make AI possible, powering hyperscale data centers, cloud platforms, and enterprise infrastructure worldwide.

This isn’t theoretical work. It’s real systems, at real scale, people solving some of the hardest challenges in technology today.

We’re looking for people who want to build, solve, and operate at that level.

Join us and let’s shape the future of data.

About This Role - The Mission

The data you will build pipelines for is not transactional data or clickstream data. It is experimental measurement data from precision product development instruments - each data point costs real time and resources to generate. Getting the data infrastructure right for this kind of scientific data is a genuinely different engineering challenge from standard web-scale or financial data work. You will develop rare expertise in ML-ready scientific data pipelines that very few data engineers in Singapore or globally have built.

Key Responsibilities

  • Feature Engineering Pipelines: Build and maintain reliable, versioned feature engineering pipelines that transform raw engineering, sensor, and operational data into structured ML-ready feature sets - delivered to the specification defined
  • Data Quality Frameworks: Design and operate data quality checks covering completeness, schema consistency, statistical distribution stability, and label accuracy across all AI training datasets. Alert the ML team when data quality degrades before it impacts model training. Collaborate with team who performs final downstream validation.
  • Data Versioning, Lineage & Drift Detection: Build and maintain training data versioning and lineage tracking - ensuring full reproducibility of all model training runs and early alerting when deployment data diverges from training distributions.
  • Data Contracts & Governance - Guided Implementation: Implement and maintain agreed data contracts between upstream data producers and downstream ML consumers, following governance standards established with guidance from ML Engineer. Establish access control and retention practices for all AI data assets.
  • Real-Time Streaming - Sensor Data Ingestion: Contribute to real-time sensor data ingestion pipelines under technical direction. Develops operational ownership progressively over 6-12 months. Not a solo day-1 requirement.
  • Synthetic Data Pipeline Support: Build pipeline infrastructure to operationalize synthetic data generation workstreams. With generative model methodology provided, builds ingestion, storage, and versioning infrastructure.
  • MLOps Data Layer: Build and maintain the training dataset registry, feature store, and model input validation - tightly integrated with the AI platform (AWS Kubernetes, PortKey, Agent Gateway, LangFuse, AWS Guardrails, Elastic Search etc.).

Requirements:

Education

  • Bachelor's or Master's degree in AI, Computer Science, Data Engineering, Electrical Engineering, Applied Mathematics, or related field. AI major preferred; strong data engineering fundamentals required.

Experience

  • Fresh to 1 year. Demonstrated project experience building end-to-end data pipelines - academic, personal, or internship contexts - is the primary evaluation criterion. Python, SQL, and pipeline design fundamentals must be solid and demonstrable through project evidence.

Must Have Skills:

  • Python: Strong proficiency - primary pipeline development language
  • SQL: Strong proficiency - complex queries, window functions, data transformation logic
  • Scalable Pipeline Design: Batch pipeline architecture; reliability, schema management, fault tolerance; Pipeline orchestration (Airflow, Prefect, AWS Glue Jobs)
  • Data Quality Principles: Completeness checks, schema validation, distribution stability monitoring
  • Data Versioning & Lineage: Reproducibility of training data; ability to trace data origin and transformations
  • ML Data Lifecycle Awareness: Basic understanding of how data pipelines connect to ML model training. Awareness that data quality and pipeline design affect model performance downstream - specifically, awareness of risks like train/test data leakage and label quality impact on model accuracy. Does not require prior ML work experience; requires curiosity and conceptual understanding.

Good to have Skills:

  • Feature store (Feast, Tecton) · Synthetic data generation (VAE, GAN, diffusion models) · Data Built Tool (DBT) · Data Load Tool DLT · Annotation platform integration (Label Studio, CVAT) · MES / LIMS system integration · Active learning data loop design · Data lakehouse (Iceberg, Dremio, AWS Glue, AWS Lake Formation) / Redhsift

#LI-FN1

WD thrives on the power and potential of diversity. As a global company, we believe the most effective way to embrace the diversity of our customers and communities is to mirror it from within. We believe the fusion of various perspectives results in the best outcomes for our employees, our company, our customers, and the world around us. We are committed to an inclusive environment where every individual can thrive through a sense of belonging, respect and contribution.

WD is committed to offering opportunities to applicants with disabilities and ensuring all candidates can successfully navigate our careers website and our hiring process. Please contact us at [email protected] to advise us of your accommodation request. In your email, please include a description of the specific accommodation you are requesting as well as the job title and requisition number of the position for which you are applying.

Notice To Candidates: Please be aware that WD and its subsidiaries will never request payment as a condition for applying for a position or receiving an offer of employment. Should you encounter any such requests, please report it immediately to WD Ethics Helpline or email [email protected].

WD thrives on the power and potential of diversity. As a global company, we believe the most effective way to embrace the diversity of our customers and communities is to mirror it from within. We believe the fusion of various perspectives results in the best outcomes for our employees, our company, our customers, and the world around us. We are committed to an inclusive environment where every individual can thrive through a sense of belonging, respect and contribution.

WD is committed to offering opportunities to applicants with disabilities and ensuring all candidates can successfully navigate our careers website and our hiring process. Please contact us at [email protected] to advise us of your accommodation request. In your email, please include a description of the specific accommodation you are requesting as well as the job title and requisition number of the position for which you are applying.

Notice To Candidates: Please be aware that WD and its subsidiaries will never request payment as a condition for applying for a position or receiving an offer of employment. Should you encounter any such requests, please report it immediately to WD Ethics Helpline or email [email protected].

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