Senior Engineer, Automation Development Engineering

Reposted 19 Days Ago
Be an Early Applicant
Hiring Remotely in Bang Pa-In, Phra Nakhon Si Ayutthaya, THA
Remote
Senior level
Big Data • Cloud • Hardware • Software
The Role
Drive predictive modeling and advanced statistical analyses to improve yield and defect prediction; build scalable data pipelines and analytics platforms; automate data collection, reporting, and anomaly detection; lead applied analytics projects with mentor oversight; partner with manufacturing engineers and present technical findings to engineering leadership.
Summary Generated by Built In
Company Description

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.

Job Description

The Early Career Talent (ECT) - Data Analytics / Computer Science (Master's Level) will join Western Digital's Head Backend Business Unit under the BEST Program. This THO-based role carries elevated expectations reflecting graduate-level expertise in data science, machine learning, or advanced analytics applied to a precision manufacturing context. 

The ECT will drive substantive analytics initiatives -- including predictive modeling, advanced process monitoring, and automation of data workflows -- within the slider processing and HGA assembly engineering environment at THO. 

Reporting to the Head Backend Engineering organization, the ECT is expected to bring independent research capability and contribute to data infrastructure and intelligence projects that directly impact yield, quality, and operational efficiency. 

ESSENTIAL DUTIES AND RESPONSIBILITIES:

  • Developing predictive models and advanced statistical analyses for process yield and defect prediction 
  • Building scalable data pipelines and analytics platforms for engineering use 
  • Leading applied analytics projects in Phase 2 of the BEST Program with mentor oversight 
  • Partnering with manufacturing and process engineers to embed data-driven methodologies into daily operations 
  • Contributing to automation of data collection, reporting, and anomaly detection 
  • Preparing and presenting technical findings to engineering leadership, including cross-site reviews

This position is part of our Early Career program at WD. Our Early Career program is designed to support individuals beginning their professional career by providing the foundational training through a structured onboarding, mentorship, and development curriculum

Qualifications

REQUIRED: 

We warmly welcome fresh graduates of a Master's degree, and Early Career Talent with 0–2 years of experience are encouraged to apply.

  • Currently pursuing or recently completed a Master's degree in Data Science, Computer Science, Statistics, Applied Mathematics, Engineering with advanced analytics/AI specialization, or equivalent experience
  • Fresh graduate or maximum 2 years post-graduate experience 
  • Advanced proficiency in Python, R, and/or SQL 
  • Demonstrated experience in machine learning, predictive modeling, or advanced statistical analysis 
  • Research or thesis experience with data-driven methodology 

PREFERRED: 

  • Thesis or published research in ML, AI, process analytics, or manufacturing intelligence 
  • Experience with big data platforms, cloud analytics (AWS, Azure, GCP), or edge computing 
  • Knowledge of time-series analysis, anomaly detection, or sensor data analytics 
  • Familiarity with manufacturing execution systems (MES) or industrial IoT data 
  • Experience building end-to-end ML pipelines (data ingestion to model deployment) 

SKILLS: 

  • Advanced machine learning and statistical modeling (supervised, unsupervised, time-series) 
  • Strong Python/R programming with software engineering discipline (version control, documentation) 
  • Data architecture and pipeline development 
  • Ability to translate complex models into operational recommendations 
  • High analytical rigor and independent thinking 

Additional Information

#LI-SB1

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].

Skills Required

  • Master's degree in Data Science, Computer Science, Statistics, Applied Mathematics, Engineering with advanced analytics/AI specialization or equivalent experience
  • Fresh graduate or maximum 2 years post-graduate experience
  • Advanced proficiency in Python, R, and/or SQL
  • Demonstrated experience in machine learning, predictive modeling, or advanced statistical analysis
  • Research or thesis experience with data-driven methodology
  • Thesis or published research in ML, AI, process analytics, or manufacturing intelligence
  • Experience with big data platforms, cloud analytics (AWS, Azure, GCP), or edge computing
  • Knowledge of time-series analysis, anomaly detection, or sensor data analytics
  • Familiarity with manufacturing execution systems (MES) or industrial IoT data
  • Experience building end-to-end ML pipelines (data ingestion to model deployment)
  • Advanced machine learning and statistical modeling (supervised, unsupervised, time-series)
  • Strong Python/R programming with software engineering discipline (version control, documentation)
  • Data architecture and pipeline development
  • Ability to translate complex models into operational recommendations
  • High analytical rigor and independent thinking

Western Digital Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Western Digital and has not been reviewed or approved by Western Digital.

  • Strong & Reliable Incentives Strong & Reliable Incentives: Incentive structures in variable‑pay roles are portrayed as well‑designed, and annual or quarterly bonuses are commonly part of total compensation.
  • Healthcare Strength Healthcare Strength: Company materials highlight comprehensive medical, dental, vision, and mental‑health resources, complemented by options like HSA/FSA and disability coverage.
  • Parental & Family Support Parental & Family Support: Caregiving support across life stages and children’s behavioral health resources are featured, with programs such as Bright Horizons referenced for U.S. employees.

Western Digital Insights

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The Company
HQ: Bengaluru, Karnataka
25,132 Employees

What We Do

At Western Digital we create data storage solutions that power the technology of today and inspire the innovations of tomorrow.

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