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Job Description

Position Summary:

We are looking for an enthusiastic entry-level Data Engineer with a growing DevOps mindset to help build and maintain reliable, scalable data pipelines that power business functions across the enterprise. This is a great opportunity for an early-career engineer to learn, grow, and build hands-on expertise - you'll support the team in developing data pipelines, learn CI/CD and operational practices, and take on increasing responsibility under the guidance of senior engineers.

Core Skills:

Databricks . Python (PySpark) . SQL . Data Pipelines . CI/CD

Key Responsibilities:

Engineering & Delivery:

  • Help build and maintain data pipelines on Databricks under guidance.

  • Develop ETL/ELT processes with attention to data quality, consistency, and scalability.

  • Contribute to reusable frameworks for ingestion, transformation, and reconciliation across source systems.
  • Follow established engineering standards - coding standards, pipeline patterns, and ETL/ELT best practices.

Operations & DevOps:

  • Assist with deploying changes through CI/CD and the Change Request (CR) lifecycle, including validation and ticket closure.
  • Participate in problem-solving and root-cause analysis, learning to drive permanent fixes over recurring firefighting.
  • Help monitor data workloads and support incident response with guidance from senior engineers.

Collaboration:

  • Work with Reporting, Platform, and Business teams to help deliver curated datasets for downstream consumers.
  • Communicate progress and issues clearly to engineering peers and mentors.
  • Document workflows and runbooks to support reproducibility and knowledge sharing.

What Success Looks Like (First 6-12 Months):

  • In your first 6-12 months, you'll build a solid understanding of the data platform, confidently deliver assigned pipeline tasks, and become comfortable with CI/CD and operational practices - with support from senior engineers.

Required Qualifications:

  • Bachelor's or Master's degree in Computer Science, Information Technology, or a related field.
  • 1+ years of experience (including internships) in data engineering or a related area - fresh graduates with relevant internships are encouraged to apply.
  • Foundational hands-on knowledge of Databricks, Python (PySpark), and SQL for data processing.
  • Exposure to building data pipelines (ETL/ELT), through projects, internships, or coursework.
  • Basic understanding of CI/CD pipelines and Git-based version control.
  • Familiarity with cloud platforms (AWS preferred) or willingness to learn.
  • Awareness of monitoring and observability concepts.
  • Good communication skills and eagerness to learn.

Preferred Qualifications:

  • Exposure to orchestration frameworks or streaming technologies.
  • Basic familiarity with Infrastructure-as-Code and deployment tooling.
  • Awareness of observability tooling for data platforms.
  • Background or interest in semiconductor manufacturing or large-scale industrial data processing.
  • Any Databricks or cloud certification is a plus.

Competencies:

  • Eagerness to learn and grow data engineering skills.
  • Ownership mindset - takes pride in the quality of assigned work.
  • Problem-solving orientation - curiosity and attention to detail.
  • Collaboration - works well with peers and mentors across teams.
  • Clear communication - able to explain technical details to peers.

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More Info

Key Skills

Data Pipelines

CI CD

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