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RETAIL
- ActiveInsightsBuild the profiles combining in-store, e‑commerce, loyalty, and third-party data.
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Retail
A retailer with thousands of franchise locations modernized their data ecosystem to enable critical data analytics use cases.
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Healthcare
A leading healthcare RCM company modernized its data governance to enhance security, streamline access, and boost efficiency.
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Discover how Vyaire Medical uses Amazon QuickSight for real-time global sales and forecasting insights, boosting production efficiency.
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A major insurer modernized its operations by implementing a cloud-based data strategy, enabling faster reporting, improved scalability, and better regulatory compliance.
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Quick overview (TL;DR)
- Client: A global quick‑service restaurant (QSR)
- Technologies used: Databricks, and Amazon Web Services (AWS)
- Goal: Introduce cost control and visibility across an expanding Databricks environment while maintaining platform stability and scalability.
- Challenges: Limited insight into cost drivers, significant volumes of unused data, and uncertainty around which optimization actions could be implemented safely.
- Solution: Wavicle helped the QSR establish sustainable Databricks cost optimization through cost analysis, targeted data cleanup, automation, and close collaboration with internal teams.
- Results: With Wavicle’s solution, the QSR stabilized Databricks and cloud spending, reduced unnecessary data footprint, and established a more predictable and manageable operating model, without impacting platform stability or scalability.
Challenges
The QSR enterprise expanded its use of Databricks across product teams and regions to support growing analytics needs. Over time, platform and cloud costs rose year over year, but the underlying causes were not clearly understood.
Although basic cost guardrails existed, the organization lacked detailed insight into usage patterns, storage growth, and inefficiencies at scale. Several key questions remained unanswered:
- Which workloads and datasets were driving most of the Databricks and cloud costs?
- How much unused or outdated data was being retained in storage?
- Which cost‑reduction actions could be taken safely without impacting daily business operations?
These uncertainties created financial risk, reduced confidence in budget forecasting, and made it difficult to plan long‑term platform optimization initiatives.
Solution
Wavicle partnered with the QSR as a Databricks platform administration and cost‑optimization specialist, focusing on long‑term sustainability rather than one‑time cost reductions. This partnership spanned Databricks environments running on AWS, with a focus on consistent governance and cost optimization across cloud platforms.
In addition to cost optimization initiatives, Wavicle supported the QSR through broader Databricks platform administration, applying governance, access controls, and operational best practices to ensure the platform remained secure, stable, and scalable.
Step‑by‑step execution
1. Cost & usage analysis
Wavicle analyzed Databricks usage and AWS cloud costs to understand where expenses were coming from. This analysis revealed large amounts of unused data, outdated datasets, and inefficient storage practices.
The initiative also improved visibility into usage and spend patterns, enabling teams to better understand how resources were consumed and identify opportunities for ongoing optimization.
2. Data cleanup & storage optimization
The team safely reduced storage usage by:
- Removing obsolete files and unused tables
- Reducing unnecessary historical versions (Delta Lake time travel)
- Cleaning up old and non‑current data files
- Aligning data retention with actual business usage
All cleanup activities were carefully executed to avoid impacting active workloads.
3. Smart automation for cost control
To ensure savings continued over time, Wavicle enabled AWS S3 Intelligent Tiering.
- Unused data automatically moved to lower‑cost storage
- Manual effort was reduced
- Future cost spikes were prevented as data volumes increased
4. Collaborative working model
Wavicle worked closely with internal teams to:
- Understand how data was being used
- Protect business‑critical workflows
- Educate teams on better data and storage practices
- Build long-term cost awareness
In parallel, Wavicle supported ongoing platform operations by assisting with user onboarding, day‑to‑day platform support, and coordination with Databricks to help resolve platform‑level issues and maintain overall platform health.
Result
Wavicle’s engagement confirmed that enterprise‑scale Databricks cost optimization was both technically sound and operationally sustainable. The initiative clearly demonstrated where immediate cost reductions were possible and where long‑term controls were required to prevent future cost growth.
By combining cost visibility, targeted data cleanup, automated storage optimization, and strong platform governance, the organization moved from reactive cost management to a controlled and predictable operating model. The engagement eliminated uncertainty around cost drivers and established a foundation for confident platform scaling.
Beyond measurable cost savings, the engagement helped improve confidence in platform operations and reinforced cost‑aware data practices across teams.
The table below summarizes the measurable outcomes achieved through Wavicle’s optimization approach.
Cost optimization impact summary
| Area of Impact | Outcome Achieved |
|---|---|
| Realized Cost Savings | Over $1.05M |
| Projected Annual Savings | More than $1.7M |
| Storage Reduction | Over 7.5 PB of unused data removed |
| Cost Visibility | Clear insight into usage and spend drivers |
| Platform Manageability | Improved governance, stability, and scalability |
Overall, the engagement strengthened the health of the Databricks platform, stabilized spending patterns, and enabled the organization to operate and scale its data environment with greater confidence and control.
Next steps
Building on the outcomes of the cost optimization initiative and ongoing platform administration efforts, the organization outlined the following areas of continued focus:
- Maintaining visibility into Databricks usage and cloud spend
- Continuing collaboration with product teams
- Incrementally strengthening governance and operational standards
- Evaluating additional opportunities for optimization and platform improvements
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