Amazon launches Strands Decider 2B, a fast open-source decision model
Amazon has launched Strands Decider 2B, a free and open-source decision model that can make choices in under a second, significantly faster and more efficient than the Jev model. This innovation is eโฆ
Amazon announced on Tuesday that it has released Strands Deciderโฏ2B, a free, fast, openโsource decision model that rivals the recently popular Jev. The new model can pick from a list of options in less than a second and ships with downloadable weights that developers can run on anything from a laptop to a server farm. The announcement came on the same day Amazonโs AI blog highlighted the growing demand for lightweight agents that can make quick choices without generating long text.
The push for decisionโonly models follows a shift in AI design. Generative models like GPTโ4 are powerful but costly and slow, especially when they need to answer simple yesโno or multipleโchoice questions. TypeSafe AIโs Jev, released two weeks ago, showed that a model trained to choose from a fixed set of options can be cheaper and faster. Strands Deciderโฏ2B builds on that idea, offering a more efficient architecture that reduces inference time and GPU memory usage by up to 50โฏ% compared with Jev.
Technical details show the model uses a lightweight transformer with 30โฏmillion parameters and a custom pruning scheme that keeps the core decision logic intact. Benchmarks on an NVIDIA A100 show latency of 12โฏms per query and a throughput of 200 decisions per second, all while consuming less than 2โฏGB of GPU RAM. The openโsource release invites researchers to tweak the weights and add new decision trees, and early adopters report that the model can be integrated into AWS Lambda functions with minimal overhead.
Looking ahead, Amazon plans to embed Strands Deciderโฏ2B into its SageMaker and Bedrock services, making it available to developers who want to build costโeffective AI assistants, recommendation engines, or automated workflows. The openโsource nature of the model could spur a new wave of communityโdriven decision agents, lowering the barrier to entry for small businesses and accelerating the adoption of AI in everyday applications.
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