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Data Engineer Airflow Jobs in Baton Rouge, LA (NOW HIRING)

You'll work at the intersection of engineering and data science, playing a key part in shaping how ... with Airflow (MWAA), MLFlow, and/or SageMaker Familiarity with ML observability tools such as ...

Data Engineer Airflow information

See Baton Rouge, LA salary details

$42.7K

$124.6K

$170.4K

How much do data engineer airflow jobs pay per year?

As of Aug 26, 2026, the average yearly pay for data engineer airflow in Baton Rouge, LA is $124,559.00, according to ZipRecruiter salary data. Most workers in this role earn between $109,900.00 and $132,000.00 per year, depending on experience, location, and employer.

What does a data engineer specializing in Airflow do?

A Data Engineer specializing in Airflow is responsible for designing, building, and maintaining data pipelines using Apache Airflow, an open-source workflow orchestration tool. Their main job is to automate, schedule, and monitor complex data workflows, ensuring data moves reliably between systems and is processed efficiently. They often collaborate with data scientists, analysts, and other engineers to make sure that data is accessible, accurate, and up to date for business needs. Expertise in Airflow helps streamline data operations, optimize performance, and improve data pipeline reliability.

How does a data engineer specializing in Airflow typically collaborate with data scientists and analysts?

Data Engineers working with Airflow play a crucial role in enabling data scientists and analysts to access reliable, up-to-date data. They design and maintain ETL pipelines that automate data movement and transformation, ensuring data is clean and available for analysis. Collaboration often involves gathering requirements, troubleshooting pipeline issues, and optimizing data workflows to meet the needs of downstream users. Effective communication and documentation are essential, as data engineers must align technical solutions with the analytical goals of the broader team.

What are the key skills and qualifications needed to thrive as a data engineer specializing in Airflow, and why are they important?

To thrive as a Data Engineer with an Airflow focus, you need strong programming skills in Python, expertise in data pipeline design, and experience with distributed systems, often supported by a degree in computer science or a related field. Familiarity with Apache Airflow, cloud platforms (like AWS or GCP), and database technologies, as well as certifications in cloud data engineering, are typically required. Outstanding problem-solving, attention to detail, and effective communication help you collaborate on complex data workflows and troubleshoot issues efficiently. These skills ensure robust, scalable, and reliable data infrastructure, enabling organizations to make data-driven decisions with confidence.

What is the difference between Data Engineer Airflow vs Data Engineer?

AspectData Engineer AirflowData Engineer
Primary FocusWorkflow orchestration and pipeline automation using AirflowData collection, storage, transformation, and pipeline development
Required SkillsPython, Airflow, ETL processes, cloud platformsSQL, Python, ETL, data modeling, cloud services
Work EnvironmentData teams, cloud environments, automation pipelinesData warehouses, big data platforms, cloud infrastructure
CertificationsAirflow certifications, Python, cloud certificationsSQL, cloud certifications, data engineering certifications

While both roles involve data pipeline work, Data Engineer Airflow specializes in designing and managing workflows with Airflow, focusing on automation and orchestration. In contrast, Data Engineer has a broader scope, including data storage, transformation, and pipeline development across various tools and platforms.

What are popular job titles related to Data Engineer Airflow jobs in Baton Rouge, LA?

For Data Engineer Airflow jobs in Baton Rouge, LA, the most frequently searched job titles are:

What job categories do people searching Data Engineer Airflow jobs in Baton Rouge, LA look for?

The top searched job categories for Data Engineer Airflow jobs in Baton Rouge, LA are:

What cities near Baton Rouge, LA are hiring for Data Engineer Airflow jobs?

Cities near Baton Rouge, LA with the most Data Engineer Airflow job openings:

Infographic showing various Data Engineer Airflow job openings in Baton Rouge, LA as of August 2026, with employment types broken down into 1% As Needed, 81% Full Time, 15% Part Time, and 3% Contract. Highlights an 86% Physical, 4% Hybrid, and 10% Remote job distribution, with an average salary of $124,559 per year, or $59.9 per hour.

Senior MLOps Engineer Central Europe

Central, LA • On-site

Zoolatech
Software Development • 201 - 500 employees

$120 - $150/hr

Other

Posted 5 days ago


Job description

Are you passionate about improving the way Machine Learning systems are developed, deployed, and scaled in real-world production environments? We are collaborating with a leading European Online Fashion & Beauty Retailer to find a highly capable and self-driven Machine Learning Engineer (MLE/MLOps Focus) to join a fast-moving and impactful team.

This role is centered around building robust ML workflows, streamlining feature creation, and standardizing ML components to ensure scalability, consistency, and speed across the organization. You’ll work at the intersection of engineering and data science, playing a key part in shaping how machine learning is delivered at scale.

Design and build ML platform components supporting data access, feature management, model training, deployment, and inference in production environments.

Develop infrastructure and tooling that enable ML practitioners to experiment, version, deploy, and monitor models in a reliable and automated way.

Build and improve scalable, reusable ML components and workflows that help teams efficiently develop and deploy models.

Contribute to standardizing ML workflows — from feature creation to model rollout to ensure consistency and reliability across teams.

Build and maintain observability and reliability tooling for ML systems, including model health checks and automated retraining processes.

Establish best practices, frameworks, and reference implementations that raise the bar for engineering rigor and speed in ML delivery.

Work closely with infrastructure, data, and security teams to ensure that ML systems are secure, compliant, and production-grade by default.

5+ years of experience in Machine Learning Engineering or MLOps roles

Strong hands-on experience with Airflow (MWAA), MLFlow, and/or SageMaker

Familiarity with ML observability tools such as Grafana, custom metric logging, model drift detection, and alerting mechanisms

Proficiency in building CI/CD pipelines for ML systems with automated testing and validation

Understanding of secure and compliant deployment of ML pipelines

Excellent debugging and problem-solving skills

Experience with OpenAI API usage in production, containerization, and Kubernetes orchestration is highly valued

Explore similar open positions that match your experience.

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