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Sr. Data Engineer

Role overview

Qualifications

  • Bachelor's degree in a computer-related field and five or more years of experience in data engineering
  • Experience building and operating scalable AWS-based data platforms using services like Lambda, Glue, Athena, S3, Redshift
  • Advanced proficiency in Python, SQL, and PySpark with experience in ETL/ELT frameworks, data warehouses, and integrations
  • Experience with data quality, governance, and optimization best practices including automated validation frameworks

Responsibilities

  • Design, implement and maintain scalable data pipelines on AWS using S3, DMS, Glue, Lambda
  • Develop robust batch and near-real-time ETL/ELT workflows to ingest, cleanse, transform and load data
  • Implement automated controls for completeness, accuracy, reconciliation, and schema changes
  • Monitor pipelines, troubleshoot failures, and resolve production data incidents

Key facts

Hard skills

Other skills

  • Communication
  • Problem Solving

About the company

ARC-One Solutions logo

ARC-One Solutions

Computer Software / SaaS

With an emphasis on quality management and customer service, we provide superior solutions which reinvent the user experience.

Company details

Company typeScaleup
IndustryComputer Software / SaaS
Company size51 - 200

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Job description

Overview:

Manages and evolves the enterprise data lake and data warehouse while ensuring the reliable, secure, and efficient flow of high-quality data. Implements data processes, managing data architecture, designing ETL processes, and analyzing data for business insights.

The base salary range for this position is $99,937-$157,044.

Actual pay will be determined based upon a candidate’s job-related knowledge, skills, education, experience, geographic location, and may include other job-related factors such as certification(s), professional licensure, or internal equity considerations.

Responsibilities:
  • Design, implement and maintain scalable data pipnes on WS using S3, DMS, Glue, lambda, step function/MWAA & Redshift.
  • Develop robust batch and near-real-time ETL/ELT workflow to ingest, cleanse, transform and load data from databases, legacy applications and event streams using Python & Pyspark.
  • Design incremental/CDC mechanism, including restart ability, idempotency, duplicate handling and recovery.
  • Implement automated controls for completeness, accuracy, reconciliation, schema changes & lineage.
  • Optimize Glue/Spark, Athena, Redshift & S3 workload through partitioning, columnar formats, query tuning and appropriate storage/compute design.
  • Design near real time/event-driven pipelines using Kinesis/Kafka where required, covering ordering, retry, idempotency and failure recovery.
  • Implement AWS data security, least privilege access, data classification and governance controls.
  • Monitor pipelines such as CloudWatch, troubleshoot failure and resolving production data incidents.
  • Enforce Git/version control, code review, automated testing and CI/CD practices.
  • Work with product owners, architect, reporting and business stakeholders to translate requirements into scalable data solutions.
  • Document pipelines and operational procedures.
Qualifications:

Qualifications Required

  • Bachelor's degree in a computer-related field from an accredited college or university and five (5) or more years of experience in data engineering, building scalable and distributed ETL data pipelines in enterprise environments.
  • Experience building and operating scalable AWS-based data platforms and pipelines using services including Lambda, Glue, Athena, S3, Redshift, DMS, MWAA (Airflow), and Step Functions, supporting batch, CDC, and near real-time data processing.
  • Advanced proficiency in Python, SQL, and PySpark with hands-on experience developing reusable ETL/ELT frameworks, data warehouses, data marts, and integrations across databases, APIs, event streams, and analytics environments.
  • Experience implementing data quality, governance, and optimization best practices, including automated validation frameworks, Lake Formation and Glue Data Catalog, performance tuning, and cost optimization across AWS data services.
  • Strong communication skills with the ability to translate complex data concepts for business stakeholders; experience in healthcare, life sciences, and other highly regulated environments with HIPAA, GDPR, FDA, or similar compliance requirements preferred.
  • Experience with metadata management, data lineage, data observability, master data management, or enterprise data catalog solutions.
  • Knowledge with data modeling & analytical data model, schema design, schema evolution, and data structure optimized for reporting and analytics.
  • Knowledge of data lake and data warehouse architecture include data partitioning and columnar storage format such as Parquet.
  • Relevant AWS certification, such as AWS Certified Data Engineer – Associate, or an equivalent cloud or data engineering certification.

WORKING CONDITIONS

  • Flexible work hours in fun collaborative environment
  • Working remote requires a reliable internet connection
  • Must have the ability to travel, as needed for company meetings

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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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