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An enterprise is architecting an AI-powered customer support ecosystem on Google Cloud with two distinct workload requirements:
You need to analyze Model Garden offerings and select the appropriate foundation models and deployment architectures to optimize both performance and cost.
Which model selection and architecture strategy should you recommend?
This architecture leverages Model Garden to implement a tiered model selection strategy (model routing) across Google Cloud AI services. It pairs the high-reasoning capabilities of Gemini Pro as a managed service for complex orchestration with a lightweight, cost-effective model like Gemma (open-weights) or Gemini Flash for high-volume, lower-complexity classification tasks.
gemma-2b-it) or a Gemini Flash model handles high-throughput categorization and entity extraction with minimal inference latency and substantially lower cost per token.Using specialized models aligned to task complexity avoids over-provisioning expensive compute for simple categorization while ensuring adequate reasoning power for multi-step agent orchestration.
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