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Overnight Databricks Data Engineer Jobs in Irving, TX

Databricks Data Engineer

Irving, TX · On-site

$106K - $127K/yr

Tata Consultancy Services is seeking a highly skilled and motivated Databricks Certified Engineer to design, build, and optimize scalable data pipelines and ETL workflows. The ideal candidate will be ...

Data Architect (Dallas)

Dallas, TX · On-site

$165K - $185K/yr

Databricks Data Engineer Location: On-Site (Multiple Offices Nationwide) Employment Type: Full-Time Salary Range: $165,000 - $185,000 per year + Annual Bonus About the Role: We are seeking a highly ...

Data Bricks Engineer Location: Plano, TX Job Summary: We are seeking an experienced Databricks Engineer with strong expertise in migration of PySpark/Hive workloads from AWS EMR or legacy platforms ...

Data Bricks Engineer Location: Plano, TX Job Summary: We are seeking an experienced Databricks Engineer with strong expertise in migration of PySpark/Hive workloads from AWS EMR or legacy platforms ...

Data Engineer

Dallas, TX · On-site

$113K - $136K/yr

Azure or Databricks certifications (e.g., Azure Data Engineer Associate, Azure Solutions Architect Expert, Databricks Data Engineer Professional) are a plus. We are GEI. Some of the world's most ...

Azure or Databricks certifications (e.g., Azure Data Engineer Associate, Azure Solutions Architect Expert, Databricks Data Engineer Professional) are a plus. We are GEI. Some of the world's most ...

Data Engineer (Databricks)

Dallas, TX · On-site

$113K - $136K/yr

Our teams work at the intersection of strategy, engineering, data, and design, helping clients ... Design, develop, and maintain scalable data pipelines using Databricks (PySpark) and Python

Data Engineer

Dallas, TX · On-site

$60 - $65/hr

As a Databricks Lead, you will be a critical member of our data engineering team, responsible for designing, developing, and optimizing our data pipelines and platforms on Databricks, primarily ...

Azure Data Engineer

Dallas, TX · On-site

$113K - $136K/yr

... Databricks, Data Lake Store, PySpark, Apache Spark, Synapse, Data Factory] to implement ... engineering discipline, or equivalent · 9-12 years of experience managing SQL Queries, Data Lake ...

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Overnight Databricks Data Engineer information

What is the difference between Overnight Databricks Data Engineer vs Data Engineer?

AspectOvernight Databricks Data Engineer
Work EnvironmentPrimarily remote or on-site, working overnight shifts to support global data operations
CertificationsDatabricks certifications, cloud platform credentials (AWS, Azure), data engineering certifications
Tools & TechnologiesDatabricks platform, Spark, cloud services, SQL, Python, ETL tools
Industry UsageTech, finance, healthcare, retail with 24/7 data needs

While both roles focus on data engineering, the Overnight Databricks Data Engineer specializes in managing data pipelines on the Databricks platform during overnight shifts, often supporting global operations. A Data Engineer may work across various platforms and shifts, with broader responsibilities in data architecture and pipeline development. The overnight role emphasizes specific platform expertise and shift timing, catering to organizations with continuous data processing needs.

What unique challenges do overnight Databricks data engineers face, and how can they be addressed?

Overnight Databricks Data Engineers often work with limited real-time support, which can present challenges when troubleshooting urgent data pipeline issues or system outages. To address this, it’s essential to develop strong problem-solving skills, document processes thoroughly, and leverage automated monitoring and alerting tools. Additionally, close collaboration with daytime teams during handoff periods ensures continuity and minimizes disruptions. Building a habit of proactive communication and maintaining detailed logs helps the entire team resolve issues efficiently and maintain data quality.

What skills and qualifications are needed to thrive as an overnight Databricks data engineer?

To thrive as an Overnight Databricks Data Engineer, you need strong proficiency in data engineering, Python or Scala programming, and experience with big data technologies, typically supported by a relevant degree in computer science or a related field. Familiarity with Databricks, Apache Spark, cloud platforms (such as AWS or Azure), and certifications like Databricks Certified Data Engineer are highly valued. Attention to detail, problem-solving, and effective communication are essential soft skills, especially for troubleshooting and collaborating across shifts. These competencies ensure reliable data pipeline management and efficient resolution of issues during off-hours, maintaining seamless business operations.

What is an overnight Databricks data engineer?

An Overnight Databricks Data Engineer is a professional who works primarily during night shifts to manage, design, and maintain big data pipelines and workflows using Databricks, a cloud-based data analytics platform. Their responsibilities often include developing and optimizing data processing jobs, ensuring data quality, and troubleshooting issues that arise during overnight data operations. This role is critical for organizations that require 24/7 data processing, continuous ETL jobs, or real-time analytics. Working overnight may also involve monitoring automated systems, performing scheduled data loads, and collaborating with global teams to ensure data availability and reliability.
What are the most commonly searched types of Databricks Data Engineer jobs in Irving, TX? The most popular types of Databricks Data Engineer jobs in Irving, TX are:
What cities near Irving, TX are hiring for Overnight Databricks Data Engineer jobs? Cities near Irving, TX with the most Overnight Databricks Data Engineer job openings:

$125K - $140K/yr

Full-time

Re-posted 26 days ago


Job description

Roles & Responsibilities
Job Title: Databricks Data Engineer
Job Description:
We are seeking a highly skilled and motivated Databricks Certified Engineer to design, build, and optimize scalable data pipelines and ETL workflows using the Databricks Data Intelligence Platform. The ideal candidate will be responsible for writing robust Python and Spark code, ensuring data quality, and implementing data governance across cloud environments (AWS, Azure, or GCP). This role requires expertise in large-scale data processing, data warehousing principles, and cloud-native solutions.
Roles & Responsibilities:
• Pipeline Development: Design, build, and maintain scalable ETL/ELT data pipelines using PySpark, Delta Lake, Auto Loader, and Databricks Workflows.
• Data Transformation & Processing: Design and process batch and streaming data to support the Medallion Architecture (Bronze, Silver, Gold layers).
• Data Governance & Security: Implement access controls and data masking policies using Unity Catalog to secure Personally Identifiable Information (PII) and ensure compliance.
• Performance Tuning: Optimize Spark jobs, troubleshoot memory bottlenecks, and adjust cluster configurations for cost and compute efficiency.
• Proactive Risk Identification: Proactively identify and address underlying data complexities, hidden challenges, and potential risks within data pipelines and the Databricks ecosystem, ensuring robust, secure, and efficient data solutions.
• Cross-Functional Collaboration: Partner with Data Scientists and Analysts to curate datasets, support machine learning models (MLflow), and provide integrated reporting.
• Develop and maintain comprehensive documentation for data pipelines, data models, and ETL processes.
• Participate in code reviews to maintain high-quality code standards.
• Troubleshoot and resolve issues in data pipelines and Databricks clusters.
Qualifications:
• Primary Skill Set:
o Databricks Platform Expertise: In-depth knowledge of the Databricks Data Intelligence Platform, including notebooks, Delta Lake, MLflow, Unity Catalog, Auto Loader, and Databricks Workflows.
o Databricks Certification: Relevant Databricks certification (Associate or Professional level) validating foundational or advanced skills in the platform.
• Secondary Skill Set:
o PySpark: Strong proficiency in developing complex data transformations and analytics using PySpark.
o Apache Iceberg: Experience with Apache Iceberg for open table format management.
• Programming Languages:
o Python: Expert-level proficiency in Python for data manipulation, scripting, and application development.
o SQL: Advanced proficiency in SQL for data querying and manipulation.
o Shell Scripting: Experience with shell scripting for automation and job orchestration.
• Cloud Platforms: Hands-on experience with Databricks deployed on major cloud providers such as Amazon Web Services (AWS), Microsoft Azure, or Google Cloud Platform (GCP).
• Big Data Concepts: Deep understanding of distributed computing, data warehousing principles, ETL/ELT processes, and data modeling.
Good to Have Skills
• DevOps Basics: Familiarity with CI/CD tools (e.g., Databricks Asset Bundles, GitHub Actions, GitLab) and orchestration tools like Apache Airflow.
• Data Warehousing: Knowledge of Hive for data storage and querying.
• Container Orchestration: Familiarity with Kubernetes for deploying and managing containerized applications.
• Version Control: Experience with Git or other version control systems.
Databricks Certification Levels
Depending on seniority, candidates may possess different levels of Databricks credentials:
• Associate Level: Validates foundational skills in writing Spark code, building SQL queries, and utilizing the Databricks workspace.
• Professional Level: Validates advanced skills for production environments, focusing on complex streaming workloads, CI/CD, data governance (Unity Catalog), and high-level performance optimization.
Salary Range: $125,000 to $140,000 per year