Scale before you need to — 72 hours ahead of demand.
Infra Predict
Why It Matters

72 hours of warning changes everything
Reactive scaling starts after performance already degraded — predictive scaling means banking end-of-month peaks and telecom event surges are provisioned for before they arrive.

35% less overprovisioning waste
Static capacity planning buys peak capacity year-round — demand forecasting rightsizes infrastructure continuously, cutting the idle-resource spend CFOs never see itemized.

Ends the firefighting culture
Capacity incidents at 2 AM become scheduled scaling events reviewed in daily standups — operations teams shift from reactive heroics to proactive management.
The Cloudly Advantage

Broadest market in the portfolio
Every enterprise with cloud infrastructure has capacity pain — no ML maturity required, opening accounts the MLOps products can't yet reach.

AIOps identity, product form
ML-driven prediction on Prometheus and CloudWatch data is exactly what "AIOps services" means — the flagship demo of what Cloudly does.

Monitoring services pull-through
Prophet forecasting over Prometheus TSDB and Grafana requires the observability foundation our AWS Monitoring services build — every deployment starts with a monitoring engagement.

Legacy workload wedge
Traditional banking and telecom workloads — our home-turf accounts — suffer worst from static capacity planning, making current clients the first pipeline.

Hard savings plus reliability pitch
35% waste reduction and prevented outages give BD both a CFO number and a CTO story in one product.
The Final Takeaway
Gateway to the platform — Infrastructure prediction builds trust in Cloudly's ML capability using the client's own ops data — the proof point that opens the full MLOps platform conversation later.
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Prophet
Core to the InfraPredict technology stack.
AWS Forecast
Core to the InfraPredict technology stack.
Prometheus TSDB
Core to the InfraPredict technology stack.
Grafana ML annotations
Core to the InfraPredict technology stack.