Remove AI Development Remove Data Quality Remove Responsible AI
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Considerations for addressing the core dimensions of responsible AI for Amazon Bedrock applications

AWS Machine Learning Blog

The rapid advancement of generative AI promises transformative innovation, yet it also presents significant challenges. Concerns about legal implications, accuracy of AI-generated outputs, data privacy, and broader societal impacts have underscored the importance of responsible AI development.

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AWS achieves ISO/IEC 42001:2023 Artificial Intelligence Management System accredited certification

AWS Machine Learning Blog

ISO/IEC 42001 is an international management system standard that outlines requirements and controls for organizations to promote the responsible development and use of AI systems. Responsible AI is a long-standing commitment at AWS. At Snowflake, delivering AI capabilities to our customers is a top priority.

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Step-by-step guide: Generative AI for your business

IBM Journey to AI blog

AI Developer / Software engineers: Provide user-interface, front-end application and scalability support. Organizations in which AI developers or software engineers are involved in the stage of developing AI use cases are much more likely to reach mature levels of AI implementation.

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Will the EU’s AI Act Set the Global Standard for AI Governance?

Unite.AI

This includes AI systems used for indiscriminate surveillance, social scoring, and manipulative or exploitative purposes. In the realm of high-risk AI, the legislation imposes obligations for risk assessment, data quality control, and human oversight.

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Ryan Kolln, CEO at Appen – Interview Series

Unite.AI

There are major growth opportunities in both the model builders and companies looking to adopt generative AI into their products and operations. We feel we are just at the beginning of the largest AI wave. Data quality plays a crucial role in AI model development.

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LG AI Research Releases EXAONE 3.5: Three Open-Source Bilingual Frontier AI-level Models Delivering Unmatched Instruction Following and Long Context Understanding for Global Leadership in Generative AI Excellence

Marktechpost

Image Source : LG AI Research Blog ([link] Responsible AI Development: Ethical and Transparent Practices The development of EXAONE 3.5 models adhered to LG AI Research s Responsible AI Development Framework, prioritizing data governance, ethical considerations, and risk management.

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Build a multi-tenant generative AI environment for your enterprise on AWS

AWS Machine Learning Blog

In this second part, we expand the solution and show to further accelerate innovation by centralizing common Generative AI components. We also dive deeper into access patterns, governance, responsible AI, observability, and common solution designs like Retrieval Augmented Generation. This logic sits in a hybrid search component.