Data Engineering Winter/Spring Co-Op (Jan-June '27)

Skyworks Solutions, Inc.

Irvine (CA)

On-site

USD 36,000 - 66,000

Full time

6 days ago
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Job summary

Skyworks Solutions, Inc. is seeking a motivated Data Engineering Winter/Spring Co-Op (Jan–June 2027) in Irvine to join the Enterprise Systems and Data Engineering team.

You will help build and support modern data solutions using Databricks and Microsoft Azure, gaining exposure to data pipelines, governance, and production engineering practices. The role offers hands-on experience with data ingestion, transformations, and lakehouse architectures, while collaborating with engineers, analysts, and

Qualifications

  • Pursuing or completed Bachelor’s or Master’s in a technical field such as CS, IT, Data Science, or Electronics Engineering.
  • On-site work for Jan–June internship (6 months).
  • Proficiency in Python with ability to write testable code.
  • Working knowledge of SQL and data manipulation concepts.
  • Solid understanding of data structures, algorithms and software fundamentals.
  • Strong analytical and problem-solving skills with attention to detail.
  • Clear written and verbal communication, teamwork, and willingness to learn.

Responsibilities

  • Develop and maintain data ingestion and transformation pipelines using Python, SQL, PySpark, and Databricks notebooks.
  • Use Databricks Workflows and jobs to orchestrate, schedule, monitor, and troubleshoot data processing activities.
  • Build and test ETL/ELT solutions for structured and semi-structured data from various sources.
  • Work with Delta Lake and lakehouse concepts (Bronze/Silver/Gold).
  • Apply data profiling, validation, and quality checks to improve data reliability.
  • Assist onboarding of datasets into Azure Data Lake Storage and Databricks.
  • Support pipeline monitoring, root-cause analysis, and documentation.
  • Use Git and CI/CD practices for version control and controlled deployments.
  • Collaborate with data engineers, analysts, and stakeholders to deliver usable data products.

Skills

Python
SQL
PySpark
Databricks
Azure
Git
CI/CD

Education

Bachelor’s or Master’s in CS/IT/Data Science

Tools

Databricks
Azure Data Lake Storage
Azure SQL
Azure DevOps

Job description

Data Engineering Winter/Spring Co-Op (Jan-June '27)

Posting Start Date: 8/25/26

Job Location(s): Irvine

If you are looking for a challenging and exciting career in the world of technology, then look no further. Skyworks is an innovator of high-performance analog semiconductors whose solutions are powering the wireless networking revolution.Through our broad technology expertise and one of the most extensive product portfolios in the industry, we are Connecting Everyone and Everything, All the Time.

At Skyworks, you will find a fast-paced environment with a strong focus on global collaboration, minimal layers of management, and the freedom to make meaningful contributions in a setting that encourages creative thinking. We are excited about the opportunity to work with you and glad you want to be part of a team of talented individuals who together are changing the way the world communicates.

Description

We are looking for a motivated Student Engineer to join our Enterprise Systems and Data Engineering team. You will work with experienced engineers to build, enhance, test, and support modern data solutions using Databricks and Microsoft Azure. The internship offers practical exposure to enterprise-scale data pipelines, data quality, cloud storage, governance, and production engineering practices.

This Co-op internship period is from January to June 2027.

Responsibilities

What you will work on -

  • Develop and maintain data ingestion and transformation pipelines using Python, SQL, PySpark, and Databricks notebooks.
  • Use Databricks Workflows and jobs to orchestrate, schedule, monitor, and troubleshoot data processing activities.
  • Build and test ETL/ELT solutions for structured and semi-structured data from enterprise systems, databases, files, and APIs.
  • Work with Delta Lake and lakehouse concepts, including Bronze, Silver, and Gold data layers.
  • Apply data profiling, validation, reconciliation, and quality checks to improve data reliability.
  • Assist with onboarding new datasets into Azure Data Lake Storage and Databricks.
  • Support pipeline monitoring, root-cause analysis, defect resolution, and documentation.
  • Use Git and CI/CD practices for version control, peer review, testing, and controlled deployments.
  • Collaborate with data engineers, analysts, platform teams, and business stakeholders to understand requirements and deliver usable data products.

Databricks Learning Focus

  • Hands-on exposure may include: Databricks workspace and notebooks, Apache Spark and PySpark, Delta Lake, Databricks Workflows, SQL Warehouses, Unity Catalog fundamentals, data quality controls, performance basics, and lakehouse architecture.

What You Will Learn

  • Databricks & Spark - Develop notebooks and scalable transformations with SQL, Python, and PySpark.
  • Pipeline Engineering - Understand ingestion, orchestration, testing, monitoring, and operational support.
  • Cloud Data Platforms - Work with Azure-based storage, integration, and data processing patterns.
  • Data Quality & Governance - Apply validation, documentation, access control, lineage, and reliability practices.
  • Engineering Delivery - Gain experience with Git, code reviews, CI/CD, Agile delivery, and stakeholder collaboration.
Required Qualifications
  • Currently pursuing or recently completed a Bachelor’s or Master’s degree in Computer Science, Information Technology, Data Science, Electronics Engineering, or a related technical discipline.
  • Ability to work on-site for 6 month period (January to June)
  • Basic programming proficiency in Python and the ability to write clear, testable code.
  • Working knowledge of SQL, relational databases, joins, aggregations, and data manipulation.
  • Understanding of data structures, algorithms, and software engineering fundamentals.
  • Strong analytical and problem-solving skills with attention to detail.
  • Clear written and verbal communication skills, with the ability to collaborate in a team environment.
  • Curiosity, accountability, and willingness to learn new technologies.
Preferred Qualifications
  • Academic, internship, or personal project experience with Databricks, Apache Spark, or PySpark.
  • Exposure to Microsoft Azure, Azure Data Factory, Azure Data Lake Storage, or Azure SQL.
  • Understanding of ETL/ELT, data warehousing, lakehouse, or medallion architecture concepts.
  • Familiarity with Git, Azure DevOps, CI/CD, Linux, REST APIs, or Power BI.
  • Awareness of data governance, security, access control, or data quality principles.
  • Databricks or Microsoft Azure learning credentials are an advantage but not required.

Ideal Candidate Profile

  • Takes ownership of assigned work and communicates progress or blockers early.
  • Approaches problems methodically and validates results before considering work complete.
  • Can learn independently while seeking guidance at the right time.
  • Values clean code, documentation, data security, and reliable delivery.
  • Is interested in building a long-term career in data engineering and cloud data platforms.

The typical pay range for an Engineering intern across the U.S. is currently USD $26.00 - $47.50 per hour and for a Non-Engineering intern across the U.S. is currently USD $22.50 - $42.00 per hour. Starting pay will depend on level of education, the ultimate job duties and requirements, and work location. Skyworks has different pay ranges for different work locations in the U.S.

Skyworks is an Equal Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, age, sex, sexual orientation, gender identity, national origin, disability, protected veteran status, or any other characteristic protected by law.Skyworks strives to create an accessible workplace; if you need an accommodation due to a disability, please contact us at accommodations@skyworksinc.com.

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