Data Engineer - (AI and Python)
Flatgigs
Posted: April 3, 2026
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Quick Summary
Design and develop scalable ETL pipelines using Python to handle large volumes of structured and unstructured data.
Required Skills
Job Description
FlatGigs is seeking a skilled Data Engineer (AI and Python) to join our dynamic team. In this role, you will build and maintain robust data pipelines and infrastructure that power AI-driven applications and analytics. You will work closely with data scientists and AI engineers to support scalable machine learning workflows and drive data innovation.
Key Responsibilities
• Design, develop, and maintain scalable ETL pipelines using Python to handle large volumes of structured and unstructured data.
• Collaborate with AI teams to develop data solutions that enable efficient model training, evaluation, and deployment.
• Implement data ingestion, cleansing, and transformation processes to ensure high-quality datasets for AI workflows.
• Optimize data workflows and storage solutions for performance and reliability.
• Work with cloud platforms (AWS, Azure, or GCP) to deploy and monitor data pipelines and related infrastructure.
• Maintain documentation and enforce data governance and compliance policies.
• Participate in code reviews, testing, and continuous integration to deliver robust production-ready data solutions.
Requirements:
Required Qualifications
• Bachelor’s degree in Computer Science, Engineering, Data Science, or related field.
• 3+ years of professional experience in data engineering with a focus on AI and ML workflows.
• Strong proficiency in Python programming and experience using libraries such as Pandas, NumPy, and Airflow.
• Hands-on experience building and managing ETL/ELT pipelines.
• Good understanding of cloud platforms (AWS, Azure, or GCP) and familiarity with deploying data infrastructure.
• Experience with SQL and NoSQL databases.
• Familiarity with container orchestration tools such as Docker and Kubernetes is a plus.
Preferred Skills
• Knowledge of AI/ML concepts and ability to collaborate effectively with data science teams.
• Experience with distributed data processing frameworks like Apache Spark.
• Understanding of data security, compliance, and best practices in data engineering.
Benefits:
Market Competitive Salary
Leaves
Health Insurance
Hybrid Work Model