Process Intelligence Engineer

Reposted 3 Days Ago
Be an Early Applicant
Singapore, SGP
In-Office
Mid level
Artificial Intelligence • Semiconductor • Manufacturing
The Role
The Process Intelligence Engineer develops data analytics solutions for logistics and supply chain operations, transforming business questions into actionable insights and automated reporting systems.
Summary Generated by Built In

Who We Are

Applied Materials is a global leader in materials engineering solutions used to produce virtually every new chip and advanced display in the world. We design, build and service cutting-edge equipment that helps our customers manufacture display and semiconductor chips – the brains of devices we use every day. As the foundation of the global electronics industry, Applied enables the exciting technologies that literally connect our world – like AI and IoT. If you want to push the boundaries of materials science and engineering to create next generation technology, join us to deliver material innovation that changes the world. 

What We Offer

Location:

Singapore,SGP

You’ll benefit from a supportive work culture that encourages you to learn, develop, and grow your career as you take on challenges and drive innovative solutions for our customers. We empower our team to push the boundaries of what is possible—while learning every day in a supportive leading global company. Visit our Careers website to learn more. 

At Applied Materials, we care about the health and wellbeing of our employees. We’re committed to providing programs and support that encourage personal and professional growth and care for you at work, at home, or wherever you may go. Learn more about our benefits

Role Overview

The Process Intelligence Engineer is responsible for designing, building, and maintaining Industrial & Systems Engineering data modeling and analytics solutions that support data‑driven decision‑making across logistics, supply chain, and manufacturing operations.

The role works closely with engineering and operations stakeholders to translate business questions into scalable reporting, analytical models, and actionable insights, supporting operational visibility, execution tracking, and continuous improvement across domain‑focused initiatives.

Key Responsibilities

Decision Intelligence & Analytics

  • Work in cross‑functional teams to design and develop reporting solutions enabling data‑driven decisions for logistics, supply chain, and manufacturing teams.
  • Partners with GIS, Engineering, and Operations teams to align process analytics initiatives with broader analytics and automation efforts.
  • Develop and maintain dashboards, analytical data models, and KPI frameworks using Power BI, Tableau, or equivalent BI platforms.
  • Build scalable ETL data pipelines for ingestion, cleansing, integration, and transformation of large datasets across SAP, Databricks, SQL data warehouses, and operational systems.
  • Perform ad‑hoc statistical, diagnostic, and root‑cause analysis using SQL and Python to support business investigations.
  • Interface with internal customers for requirements gathering; translate business problems into reporting specifications and analytical outputs.
  • Create automated workflows to ensure timely refresh and reliability of datasets, dashboards, and scorecards.
  • Generate reports, technical documentation, business presentations, and stakeholder communications for operations and leadership.
  • Continuously evaluate visualization, and reporting technologies; recommend improvements for reporting efficiency, data quality, and automation.
  • Provide guidance to team members on best data and process practices, visualization standards, metric definitions, and structured problem‑solving approaches.
  • Enable descriptive to predictive modeling and predictive to prescriptive modeling using standard datasets to optimize warehousing.

Simulation & Decision Modeling Skills

  • Applies statistical and scenario‑based simulation techniques to evaluate business outcomes, operational tradeoffs, and decision alternatives.
  • Uses what‑if analysis, Monte Carlo simulation, sensitivity analysis, and probabilistic modeling to assess risk, variability, and performance impacts across key metrics.
  • Supports capacity, demand, throughput, and service‑level analysis using historical data and modeled assumptions rather than detailed process‑engineering tools.
  • Partners with engineering, operations, and analytics teams to frame simulation inputs, assumptions, and constraints aligned with real‑world execution.
  • Communicates simulation results clearly through dashboards, visualizations, and narratives to support leadership decision‑making.
  • Leverages Python, SQL, and analytical tooling to build lightweight, repeatable simulation models that integrate with BI datasets and reporting workflows.

Education & Experience

  • Education: Bachelor’s degree required; Master’s preferred in Industrial & Systems Engineering, Computer Science, Business Analytics, Systems Engineering or a related field.
  • Experience: 4–7 years of experience in process intelligence, analytics, dashboarding, or data‑engineering–adjacent environments.

Preferred Skills

  • Strong proficiency in SQL and Python for analytics and problem‑solving.
  • Expertise in Power BI, Tableau, or equivalent visualization tools.
  • Experience with cloud and big‑data platforms (Azure, Databricks, Snowflake, AWS, GCP).
  • Knowledge of ETL/ELT frameworks, data modeling techniques (star/snowflake schemas), and DAX or similar analytical expressions.
  • Understanding Data automation, data refresh pipelines, and reporting governance.
  • Strong communication, stakeholder management, and collaboration skills.
  • Curious, analytical mindset with interest in operational analytics and continuous improvement.

Additional Information

Time Type:

Full time

Employee Type:

Assignee / Regular

Travel:

Relocation Eligible:

No

Applied Materials is an Equal Opportunity Employer. Qualified applicants will receive consideration for employment without regard to race, color, national origin, citizenship, ancestry, religion, creed, sex, sexual orientation, gender identity, age, disability, veteran or military status, or any other basis prohibited by law.

Skills Required

  • Bachelor's degree in Industrial & Systems Engineering, Computer Science, Business Analytics or related field
  • 4-7 years of experience in process intelligence, analytics, or dashboarding
  • Strong proficiency in SQL and Python
  • Expertise in Power BI, Tableau, or equivalent

Applied Materials Compensation & Benefits Highlights

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

  • Healthcare Strength Company materials emphasize comprehensive medical, dental, vision, mental health, and wellness programs for employees and families, with coverage beginning on day one in many cases. On-site or virtual care options at major campuses further reinforce the breadth of support.
  • Leave & Time Off Breadth Exempt employees are offered a Flexible Time Off program and U.S. teams observe 11 paid company holidays. These policies are consistently highlighted across official benefits summaries.
  • Equity Value & Accessibility An Employee Stock Purchase Plan is widely available and presented as a core part of the U.S. package, alongside equity grants in many roles. These ownership elements are positioned as meaningful contributors to total rewards.

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The Company
HQ: Santa Clara, CA
23,282 Employees
Year Founded: 1969

What We Do

Applied Materials is the leader in materials engineering solutions used to produce virtually every new chip and advanced display in the world. Our expertise in modifying materials at atomic levels and on an industrial scale enables customers to transform possibilities into reality. At Applied Materials, our innovations make possible a better future.

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