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Data Engineer

Data Engineer

CompanyCVS Health
LocationSmithfield, RI, USA
Salary$106038 – $150000
TypeFull-Time
DegreesMaster’s
Experience LevelJunior, Mid Level

Requirements

  • Master’s degree (or foreign equivalent) in Computer Science, Data Science, Statistics, Mathematics, Analytics, Engineering, or a related field
  • Two (2) years of experience in the job offered or related occupation
  • Two (2) years of experience in Agile methodologies, or SAFe Software Development Principles
  • Two (2) years of experience in REST, SOAP, or Web Service APIs
  • Two (2) years of experience in data analytics on large data sets in healthcare, business, or retail sector
  • Two (2) years of experience in JIRA, Rally or Confluence
  • Two (2) years of experience in SAS or SQL programming languages
  • Two (2) years of experience in writing application code and deploying to production
  • Two (2) years of experience in Unix, Linux, or Shell scripting
  • Two (2) years of experience in writing Extract/Transform/Load (ETL) processes
  • Two (2) years of experience in managing large-scale data structures or ETL workflows
  • Two (2) years of experience in data warehousing
  • Two (2) years of experience in healthcare data management processes and techniques, including data standards, interoperability, and proper privacy data.

Responsibilities

  • Develop large scale data structures and pipelines to organize, collect and standardize data to generate insights and address reporting needs
  • Write ETL (Extract/Transform/Load) processes
  • Design database systems and develop tools for real-time and offline analytic processing that improve existing systems and expand capabilities
  • Collaborate with Data Science team to transform data and integrate algorithms and models into automated processes
  • Test and maintain systems and troubleshoot malfunctions
  • Leverage knowledge of Hadoop architecture, HDFS commands, and designing and optimizing queries to build data pipelines
  • Utilize programming skills in Python, Java, or similar languages to build robust data pipelines and dynamic systems
  • Build data marts and data models to support Data Science and other internal customers
  • Integrate data from a variety of sources and ensure adherence to data quality and accessibility standards
  • Analyze current information technology environments to identify and assess critical capabilities and recommend solutions to complex business problems
  • Experiment with available tools and advise on new tools to provide optimal solutions that meet the requirements dictated by the model/use case.

Preferred Qualifications

    No preferred qualifications provided.