Senior Data Engineer

Seamless

Columbus (OH)

Hybrid

USD 120,000 - 160,000

Full time

15 hours ago
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Job summary

Seamless is seeking a Senior Data Engineer to advance a global data product initiative. You will work cross-functionally on a hybrid data platform, improving coverage, accuracy, and scalability of our product data while solving complex data problems that impact millions of professionals in the lead intelligence space.

The role emphasizes transforming data through AWS-based pipelines, ETL orchestration, analytics, and ML approaches, with ownership of architecture and end-to-end delivery in a

Qualifications

  • Minimum 4 year bachelor’s degree in computer science, engineering, mathematics, statistics or related field.
  • 5+ years of professional data engineering experience, with end-to-end ownership.
  • Able to make and defend architecture decisions with minimal oversight.
  • Experience with AWS cloud-based data platforms.
  • Strong Python and SQL skills; experience with distributed data processing (Spark) is a must.
  • Excellent communication and documentation abilities; ability to translate complex concepts for stakeholders.

Responsibilities

  • Large-scale data processing and ETL.
  • Data integration and normalization across diverse data sources.
  • Data quality and validation.
  • Querying and processing performance improvements.
  • Cloud-based data infrastructure ownership.
  • Data analysis and scoring systems development.
  • Automated testing and production reliability.
  • Machine learning and statistical approaches to data quality.
  • Emerging AI, LLM, and agentic technologies.

Skills

Python
SQL
Data engineering
Spark
AWS
Communication
Troubleshooting

Education

Bachelor's degree in CS/Engineering/Math/Statistics

Tools

Apache Spark
AWS
ETL orchestration

Job description

Seamless delivers the world’s best sales leads. Through our product, we help sales teams maximize revenue, increase sales, and easily acquire their total addressable market using artificial intelligence; by development of a robust real-time contact and company search engine as well as a suite of technically-advanced tools to support sales and lead generation. We have been recognized as one of Ohio’s fastest growing companies and have been recently ranked No. 7 in LinkedIn's Top 50 Startups of 2022, featured in Forbes as #1 Software company in Ohio in 2022, and on G2’s “Top 100 Highest Satisfaction Products for 2022” list!

We are an equal opportunity employer and value diversity at our company. We do not discriminate on the basis of race, religion, color, national origin, gender, sexual orientation, age, marital status, veteran status, or disability status. Visa Sponsorship is not included in our hiring package. Applicants must be authorized to work in the U.S.

The Opportunity

The Senior Data Engineer will play a critical role in our expanding Data Product Team. They will work hands‑on with our entire company and contact profile universe with the main objective of improving the coverage, accuracy, and infrastructure scalability of our product data. This person will be tasked with solving significant data problems that are positively impacting millions of business professionals in the ever evolving lead intelligence space. The Senior Data Engineer will have the opportunity to work with cutting edge technology in big-data, ETL orchestration, data analytics, machine learning, and AI.

AWS-Based ETL Pipeline - Deep Data Engineering - Infrastructure Performance - Data Analytics

This is a hybrid data engineering and analytics role, not a pure pipeline-building position. Much of the work involves investigating data‑quality issues, analyzing why current scoring rules produce bad outcomes, and deciding how they should change — that requires real analytical and statistical reasoning on top of the engineering work, not just building infrastructure to move data from A to B. You'll be expected to own architecture decisions independently and work with limited day-to‑day guidance.

Our pipeline processes billions of records, so this is not a role for someone who has only worked with SQL/Spark at small‑to‑moderate scale. Query and job design choices here have real cost and runtime consequences, and inefficient code fails or times out in ways it wouldn't on a smaller dataset.

Responsibilities
What You'll Work On
  • Large-scale data processing and ETL
  • Data integration and normalization across diverse data sources
  • Data quality and validation
  • Querying and processing performance
  • Cloud-based data infrastructure
  • Data analysis and scoring systems
  • Automated testing and production reliability
  • Machine learning and statistical approaches to data quality
  • Emerging AI, LLM, and agentic technologies

The specific problems will evolve as our product and data platform grow. We are looking for someone who can learn the system, understand the underlying data, and determine the best technical approach rather than simply following a predefined implementation pattern.

Education & Experience
  • Minimum 4 year bachelors degree required from a reputable school with a concentration in computer science, engineering, mathematics, statistics or a related field of study
  • 5+ years of professional data engineering experience, with demonstrated ownership of projects end-to-end (design through production)
  • Comfortable making and defending architecture decisions with minimal oversight
  • Comfortable owning a project end-to-end: from analysis/planning through implementation and testing
  • Able to work with dependencies on other teams' data deliverables and adjust scope accordingly
  • Clear communicator who can document architecture decisions and tradeoffs
  • Strong Python and SQL skills
  • Significant hands‑on experience with Apache Spark or a comparable distributed data processing technology
  • Experience designing data processing solutions for large datasets where performance, scalability, and cost are important considerations
  • Experience working with AWS cloud-based data platforms
  • Experience building and maintaining production ETL or data processing pipelines
  • Experience with automated testing and validation of data processing code
Analytical & Data Reasoning
  • Strong ability to investigate unfamiliar data and identify the source of data quality or processing problems
  • Experience using data analysis to evaluate business or product outcomes and guide engineering decisions
  • Ability to reason about the accuracy and reliability of data rather than assuming that existing data or business rules are correct
  • Experience evaluating changes using historical or production data before deploying them
  • Ability to translate ambiguous data problems into measurable requirements and testable solutions
  • Strong attention to detail when validating changes to production data
  • Experience working with multi-stage data pipelines and understanding dependencies across systems
  • Experience with workflow orchestration or comparable distributed processing systems
  • Ability to troubleshoot production systems across multiple services and identify where failures or unexpected results originate
  • Experience working with data from multiple sources and developing consistent, reliable datasets
  • Ability to understand and document complex data flows and system behavior
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