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Data Engineer III

McLane

Temple (TX)

Hybrid

USD 80,000 - 130,000

Full time

30+ days ago

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Job summary

An established industry leader in supply chain services is seeking a skilled Data Engineer III to join their innovative team. This hybrid position offers a unique opportunity to develop and maintain cutting-edge data processing software while collaborating with cross-functional teams. The role involves architecting end-to-end data solutions, optimizing data infrastructure, and mentoring junior engineers. With a commitment to delivering superior customer experiences and enhancing team productivity, this company provides a supportive environment where your contributions will make a significant impact. If you are passionate about data engineering and ready to take on exciting challenges, this is the perfect opportunity for you.

Benefits

Medical Insurance
Dental Insurance
Vision Insurance
Paid Time Off
401(k) Profit Sharing Plan
Pet Insurance
Maternity/Paternity Leave
Employee Assistance Programs
Discount Programs
Tuition Reimbursement

Qualifications

  • 7+ years of experience in data engineering and architecture.
  • Deep understanding of distributed computing and data scalability.
  • Proficiency in building and maintaining data pipelines.

Responsibilities

  • Design and maintain data architecture and pipelines adhering to ELT principles.
  • Lead complex data engineering projects and mentor junior engineers.
  • Collaborate with cross-functional teams to develop data solutions.

Skills

Data Architecture
Distributed Computing
Critical Thinking
Leadership
Project Management
Data Warehousing
Data Pipeline Development
Software Engineering Fundamentals
Cloud Database Technologies
SQL

Education

Bachelor's degree in Computer Science
Bachelor's degree in Statistics
Bachelor's degree in Engineering

Tools

Spark/Databricks
Redshift
Snowflake
DBT
Airflow
Git
CI/CD
JIRA
Alteryx
Tableau

Job description

McLane is one of the largest and most stable supply chain services leaders in the United States. We’ve been at the forefront of delivering retail and restaurant solutions for convenience stores, mass merchants, drug stores, and chain restaurants for over 125 years. Our vision is to be an agile, innovative, and unified supply chain partner that delivers a superior customer experience, improves the lives of our teammates and community, and produces best-in-class returns.

The Data Engineer III is a hybrid remote position which will require the candidate to report and work from the office three days a week. Therefore, interested candidates should be within a 50-minute radius from Temple, TX.

Position Overview:

Develop and maintain data processing software. Responsibilities include creating and optimizing data infrastructure, clean, prepare, and optimizes data for further analysis and modelling. Designs, develops, optimizes, and maintains data architecture and pipelines that adhere to Data Pipeline (i.e., ELT) principles and business goals. Lead complex data engineering projects and provide strategic guidance.

Benefits you can count on:

  • Day 1 Benefits: medical, dental, and vision insurance, FSA/HSA, and company-paid life insurance
  • Paid time off begins day one.
  • 401(k) Profit Sharing Plan after 90 days.
  • Additional benefits: pet insurance, maternity/paternity leave, employee assistance programs, discount programs, tuition reimbursement program, and more!

Essential Job Functions/Principal Accountabilities:

  • Designs, develops, optimizes, and maintains data architecture and pipelines that adhere to ELT principles and business goals.
  • Solves complex data problems to delivers insights that helps business achieve its goals.
  • Architect and implement end-to-end data solutions.
  • Define data engineering best practices and standards.
  • Mentor junior engineers and collaborate with cross-functional teams.
  • Creates data products for engineer, analyst, and data scientist team members to accelerate their productivity.
  • Engineer effective features for modelling in close collaboration with data scientists and businesses.
  • Leads the evaluation, implementation and deployment of emerging tools and process for analytics data engineering to improve productivity and quality.
  • Partners with machine learning engineers, BI, and solutions architects to develop technical architectures for strategic enterprise projects and initiatives.
  • Fosters a culture of sharing, re-use, design for scale stability, and operational efficiency of data and analytical solutions.
  • Advises, consults, mentors, and coach other data and analytic professionals on data standards and practices.
  • Develops and delivers communication and education plans on analytic data engineering capabilities, standards, and processes.
  • Understands machine learning, data science, computer vision, artificial intelligence, statistics, and/or applied mathematics as necessary to conduct role effectively.
  • Performs other duties as assigned.

Minimum Skills & Qualifications:

  • Bachelor’s degree in computer science, statistics, engineering, or a related field.
  • 7 plus years of experience required.
  • Deep understanding of distributed computing, data architecture, and scalability.
  • Strong critical thinking skills and ability to address big data challenges.
  • Leadership and project management abilities.
  • Proficiency in designing and maintaining data warehouses and/or data lakes with big data technologies such as Spark/Databricks, or distributed databases, like Redshift and Snowflake, and experience with housing, accessing, and transforming data in a variety of relational databases.
  • Proficiency in building data pipelines and deploying/maintaining them following modern DE best practices (e.g., DBT, Airflow, Spark, Python OSS Data Ecosystem).
  • Proficiency in Software Engineering fundamentals and software development tooling (e.g., Git, CI/CD, JIRA) and familiarity with the Linux operating system and the Bash/Z shell.
  • Proficiency with cloud database technologies (e.g., Azure) and developing solutions on cloud computing services and infrastructure in the data and analytics space.
  • Basic familiarity with BI tools (e.g., Alteryx, Tableau, Power BI, Looker).
  • Expertise in ELT and data analysis, SQL primarily.
  • Conceptual knowledge of data and analytics, such as dimensional modelling, reporting tools, data governance, and structured and unstructured data.

Working Conditions:

  • Office environment.

Candidates may be subject to a background check and drug screen, in accordance with applicable laws.

All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, or status as a protected veteran.

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