Senior Data Engineer

Kreate

$150K — $170K *
US-AnywhereRemote in United States
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years in data engineering or related roles.
  • Experience in data engineering, cloud architecture, and MLOps.
  • Proficient in Python and SQL; familiar with frameworks like Spark and Panda.
  • Knowledge of Azure services (Data Factory, Synapse, Databricks).
  • Experienced with GitHub for version control and CI/CD practices.
  • Ability to collaborate with data scientists and analysts.

Responsibilities

  • Deliver production-ready datasets and pipelines for data science.
  • Implement MLOps best practices to bridge ML experimentation and deployment.
  • Build and deploy data-driven applications utilizing Azure services.
  • Optimize ROI on Azure investment via cloud-native architecture.
  • Standardize workflows using GitHub, including automated CI/CD processes.
  • Automate deployments to enhance engineering velocity with GitHub Actions.
  • Improve data accessibility and workflow efficiency for analysts, engineers, and data scientists.

Benefits

  • Fully remote position, providing flexibility and work-life balance.
  • Opportunity to shape data-driven decision-making across the organization.
  • Collaboration with cross-functional teams, enhancing professional growth.
  • Directly reporting to the VP of AI and Analytics, offering insights into high-level strategies.
  • Focus on innovative technologies like AI and automation in data engineering.
Full Job Description
We are seeking a Senior Data Engineer to transform our data into a scalable, reliable platform that supports analytics, applications, and machine learning. In this role, you will standardize development through GitHub and fully leverage Azure to maximize engineering velocity, improve data quality, and enable future AI and automation capabilities. You will bridge the gap between ML experimentation and production deployment, ensuring our data platform is robust, reliable, and ready for innovation. This is an opportunity to shape how data powers decision-making across the organization.

Key Responsibilities

  • Deliver production-ready datasets and pipelines to support data science and analytics.
  • Bridge the gap between ML experimentation and deployment with MLOps best practices.
  • Build and deploy data-driven applications using Azure services.
  • Maximize ROI on Azure investment through cloud-native architecture.
  • Standardize development workflows using GitHub (version control, pull requests, CI/CD).
  • Automate deployments and accelerate engineering velocity with GitHub Actions.
  • Reduce bottlenecks for analysts, engineers, and data scientists by improving data accessibility and workflow efficiency.
  • Enhance data quality, governance, and observability.
  • Enable future capabilities such as AI, automation, and personalization.


Qualifications

  • 5+ years of experience in data engineering or related roles.
  • Proven experience in data engineering, cloud architecture, and MLOps.
  • Strong proficiency in Python and SQL for data pipelines, automation, and data framework (Spark, Panda).
  • Familiarity with REST APIs and application development concepts.
  • Strong knowledge of Azure services (Data Factory, Synapse, Databricks, etc.) and cloud-native solutions.
  • Proficiency with GitHub, including version control, CI/CD, and automation using GitHub Actions, workflows, and PR reviews.
  • Experience delivering production-ready datasets and pipelines for analytics and ML.
  • Ability to collaborate effectively with data scientists, analysts, and engineers to prepare and deliver clean, feature-ready datasets.
  • Knowledge with data governance, observability, and quality best practices is preferred.
  • Experience with real-time streaming tools (Kafka, Event Hub) also preferred.
  • Strong problem-solving skills and a passion for building scalable, maintainable, and automated data platforms.
  • Experience with Microsoft Fabric of Lakehouse architectures is a nice-to-have.


Company Details:

  • Location: Remote
  • This position will report to the VP of AI and Analytics


The pay range for this role is:

150,000 - 170,000 USD per year (Remote)

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