DATABRICKS SERVICES · [SERVICE CATEGORY]
Connect customer, product, order, clickstream and inventory data to understand what is happening, why it is happening and what to do next.
Dateonic builds analytics and intelligence capabilities on Databricks — from Customer 360 and real-time shopping behavior to demand forecasting and inventory intelligence.
We design around the data domains that drive commerce — customers, products, orders, inventory, transactions and digital behavior.
E-commerce decisions often depend on data that is minutes or seconds old. We build architectures that support both batch and streaming workloads.
The platform is designed from the start to serve BI, advanced analytics, ML and AI without creating separate data silos.
E-commerce Analytics & Intelligence
Modern e-commerce generates data across storefronts, mobile applications, transactions, marketing, inventory and other operational systems. The challenge is not collecting more data — it is making that data available, consistent and usable across the business.
We bring these sources together in a governed Databricks Lakehouse so data engineers, analysts, data scientists and business applications can work from the same foundation.
What we deliver
Connect commerce platforms, ERP, CRM, POS, PIM, marketing and other operational sources into a consistent data architecture.
Ingest website, mobile and transactional events so customer behavior and operational changes can become available without waiting for nightly batch processing.
Build reusable models around customers, products, orders, inventory and other business domains so downstream teams don’t repeatedly reconstruct the same data.
Create curated data layers that can power Databricks SQL, BI, machine learning, applications and AI from the same underlying platform.
How we work
01 · DISCOVER
Identify source systems, domains, data owners, dependencies, latency requirements and critical business workloads
02 · DESIGN
Design the Databricks architecture, data domains, ingestion patterns, storage layers and operating model.
03 · BUILD
Build pipelines and reusable data products for customer, product, order, inventory and behavioral data.
04 · ENABLE
Connect analytics, BI, ML and AI workloads and enable your teams to build on the new foundation.
Selected Work · Optional
CASE STUDY
Dateonic unified POS, e-commerce, ERP and warehouse data on Databricks, enabling real-time inventory insights, consistent reporting and a scalable foundation for forecasting and AI.
CASE STUDY
A unified customer view with actionable insights for more personalized engagement.
Technical Leadership
E-commerce businesses generate enormous amounts of data across customers, products, orders, clickstream and inventory. The challenge isn’t collecting more data — it’s connecting it.
At Dateonic, we help e-commerce companies bring these signals together on Databricks and turn them into a trusted foundation for analytics, AI and better decisions.
FAQ
QUESTION 01
No. The goal is not to replace Shopify, Magento, Salesforce, ERP, PIM or other operational systems.
We connect the data they generate into a shared Databricks foundation, so analytics, AI and downstream applications can work across the full business without replacing the systems that run it.
QUESTION 02
Start with the data required for the highest-value decisions. For most e-commerce companies, that means some combination of customer, product, orders, clickstream and inventory data.
We then expand the foundation in waves rather than attempting to centralize every source before delivering any value.
QUESTION 03
No. Real-time architecture should follow the decision, not the technology.
Clickstream personalization or inventory availability may require low latency, while financial reporting or historical analysis may be perfectly suited to scheduled processing.
QUESTION 04
The goal is broader than central reporting. The platform needs to support batch and streaming data, structured and semi-structured sources, analytics, machine learning and AI from the same foundation.
That means you are not building one platform for BI and then separate systems for real-time data and AI.
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