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  • Planning estimates are not quotes.
  • Managed estimates can be low when rendered-token inputs omit multi-turn unrolling. Dedicated compute floors can be low when sequences pack poorly.
  • Dedicated shows a saturated compute floor. Allocated GPU time spent initializing the model, writing checkpoints, or idle can make real jobs cost more. Queue wait and pre-allocation provisioning are not billed.

Prepare inputs with the Training Skill

The Fireworks Training Skill prepares inputs and calculates Managed and Serverless estimates from published rates. It can inspect a local dataset or an existing job and identify assumptions. It does not calculate Dedicated numbers. Use this page for Dedicated planning. The Skill does not launch a job or authorize spend while estimating. Training still requires the Skill’s complete final plan and your explicit confirmation.

Reinforcement learning

RL cost varies with rollout shape, concurrency, reward or verifier design, training method, and evaluation workload. Contact the Training team for a tailored estimate. To compare the rollout inference cost of multi-turn agentic RL, use the separate rollout cost comparison. That page does not estimate SFT or DPO training cost.