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AWS Data Engineer (Associate)
Mactores
AWS Data Engineer (Associate)
This job is still taking applications, but it's been up a while.
About the job
Mactores provides modern data platform solutions since 2008, focusing on automation, agility, and security. As an AWS Data Engineer, you'll collaborate on data products, solve business problems, and enhance data quality in a casual, innovative culture.
Requirements
- 1-3 years experience in Apache Spark
- 2+ years experience with ETL jobs
- Proficient in SQL and SparkSQL
- Knowledge of AWS Glue
Qualifications
- Deep understanding of Dataframe API
- Experience with PySpark and SparkSQL
- Ability to collaborate across teams
Full job description
Mactores is the agent-native AWS modernization firm. Most modernization work doesn't ship, it stalls in pilots, slips a year, or lands at three times the budget. We exist to ship it: production systems running, legacy retired, outcomes measured. Our delivery is built on Aedeon, the agent platform built by Mactores' founders' sister company, which absorbs the repetitive 60–70% of engagement work, discovery, dependency mapping, validation, test generation, that traditional consulting bills human hours against. Forward-deployed engineers own the rest: architecture, judgment, and cutover, on dates we commit to in the contract.
This role sits in our Data Platform Modernization pillar: consolidating and migrating customer data infrastructure on AWS in weeks, not quarters. Customers come to us with pipelines nobody trusts, metrics nobody agrees on, and warehouses that stall every new business question. You'll build the data products that fix that — working with business leads, analysts, and data scientists to understand the domain, then shipping pipelines and models that hold up in production.
Because Aedeon handles the repetitive layer source discovery, schema mapping, validation harnesses — you won't spend your early career grinding through spreadsheet audits. You'll spend it writing code that reaches production and learning judgment from engineers who own cutovers. Data quality isn't a checkbox here; it's the product.
What you will do?
- Write efficient PySpark and Amazon Glue code that ships to production.
- Write SQL in Amazon Athena and Amazon Redshift.
- Pick up new technologies and techniques and put them to work on real business problems.
- Work across engineering and business teams to build data products and services people actually use.
- Deliver projects with the team and land customer updates on time.
What are we looking for?
- 1 to 3 years of experience in Apache Spark, PySpark, and Amazon Glue.
- 2+ years of experience writing ETL jobs using PySpark and SparkSQL.
- 2+ years of experience with SQL queries and stored procedures.
- Deep understanding of the Dataframe API and the transformation functions supported by Spark 2.7+.
You will be preferred if you have
- Prior experience in working on AWS EMR, Apache Airflow
- Certifications AWS Certified Big Data – Specialty OR Cloudera Certified Big Data Engineer OR Hortonworks Certified Big Data Engineer
- Understanding of DataOps Engineering
How we work?
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