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incremental-loading · GitHub Topics · GitHub

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incremental-loading

Here are 37 public repositories matching this topic...

End-to-end lakehouse pipeline for retail data: Postgres to Databricks (incremental ingestion), dbt (incremental models, SCD2, metadata-driven OBT), Airflow orchestration, S3 secondary ingestion, CI-gated on dbt tests.

  • Updated Aug 29, 2026
  • Python

Designed a production-grade Azure Data Engineering project centered on Azure Data Factory. Built dynamic, metadata-driven pipelines to ingest data from on-prem systems, REST APIs, and Azure SQL into ADLS Gen2 using Medallion Architecture, incremental loading, and enterprise-scale orchestration patterns.

  • Updated Jan 13, 2026

End-to-end data warehouse for multi-country market-share analytics (FMCG / nutrition) across two markets — Spain (ES) and Portugal (PT) — built on a medallion architecture in Snowflake, feeding Power BI dashboards.

  • Updated Jul 29, 2026
  • SQL

Incremental batch data pipeline for e-commerce order data, built with Airflow and Polars using a medallion (bronze/silver/gold) architecture, Pandera data quality gates, and dimensional modeling on DuckDB.

  • Updated Aug 20, 2026
  • Jupyter Notebook

End-to-end analytics platform on Microsoft Fabric — metadata-driven pipelines, incremental loading, SQL Warehouse, semantic model, Power BI

  • Updated Jul 19, 2026

Building my first ETL pipelines using Python to learn more about data engineering. Learning by doing.

  • Updated Jul 31, 2026
  • Python

Production-inspired ETL pipeline built with Python and PostgreSQL featuring data validation, transformation, incremental loading, audit logging, reporting, archiving, CLI support, retry mechanism, and automated testing.

  • Updated Aug 5, 2026
  • Python

End-to-End Retail ETL Pipeline using Apache Airflow, PostgreSQL, Docker, and Python with Incremental Loading and Data Quality Validation.

  • Updated Jul 26, 2026
  • Python

Enterprise SQL data platform demonstrating metadata-driven ETL, staging, dimensional warehousing, incremental loading, auditability, and Docker/LocalDB deployment using SQL Server and SSDT.

  • Updated Aug 17, 2026
  • Jupyter Notebook

End-to-end ETL pipeline: incremental API ingestion, dbt transforms, Airflow orchestration, and CI

  • Updated Aug 27, 2026
  • Python

Real-time AWS ecommerce data pipeline using MSK Serverless, MSK Connect, S3, AWS Glue, Delta Lake, SCD Type 2, and Redshift Serverless.

  • Updated Aug 18, 2026
  • Python

My first data warehousing project in Databricks SQL a layered pipeline (staging → transformation → core) modeled into a star schema, with incremental loading and SCD Type 1 using MERGE INTO.

  • Updated Jul 4, 2026

A Databricks data engineering project simulating a full medallion architecture (Bronze → Silver → Gold) for e-commerce sales data, featuring incremental loading, a Kimball-style star schema, and SCD Type 1 & Type 2 implementations using PySpark and Delta Lake MERGE INTO.

  • Updated Jul 13, 2026
  • Python

Azure Data Factory end-to-end project demonstrating real-world data engineering workflows including API ingestion, on-premises data migration, incremental loading with watermarking, pipeline orchestration, Logic App alerts, audit logging, and REST API pagination.

  • Updated Aug 14, 2026

This project pulls historical and forecast weather data for multiple cities, cleans and transforms it, performs quality checks, and stores the results in tidy daily and monthly summary datasets.

  • Updated Nov 23, 2025
  • Python

Local-first NYC TLC lakehouse with Bronze/Silver/Gold layers, data quality, incremental loading, and Airflow backfills

  • Updated Aug 25, 2026
  • Python

Real-time AWS ecommerce data pipeline using MSK Serverless, MSK Connect, S3, AWS Glue, Delta Lake, SCD Type 2, and Redshift Serverless.

  • Updated Aug 18, 2026
  • Python

End-to-End Data Engineering Pipeline using Snowflake, dbt, AWS, and Medallion Architecture (Bronze, Silver, Gold) with Incremental Models, Snapshots, Macros, and Data Quality Testing.

  • Updated Jun 11, 2026
  • Python

Production-ready ETL Pipeline that extracts GitHub repositories, performs incremental loading into PostgreSQL, sends email notifications, and runs automatically using APScheduler.

  • Updated Jul 9, 2026
  • Python

End-to-end Retail Sales ETL Pipeline using Python, PostgreSQL, Apache Airflow, Docker, Star Schema Data Warehouse Modeling, KPI Generation, and Incremental Data Loading.

  • Updated Jun 16, 2026
  • Python

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