How can product leaders prioritize ethics in generative AI? Join us for an in-depth webinar hosted by Denise Hemke, where Cisco AI Product Lead Piyush Chandra will explore the key ethical considerations that product managers must address when developing Generative AI products. As AI technology rapidly advances, ensuring that these innovations are ethically sound and beneficial for all users is paramount. This session will provide valuable insights and practical strategies to help you build Generative AI products that are not only innovative but also responsible and inclusive.
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Show Notes:
- Generative AI is a rapidly evolving technology that can create new content, unlike models that simply replicate existing content.
- Ethical considerations are crucial when developing generative AI products, as the technology has the potential to significantly impact people’s lives.
- There have been several legal issues and lawsuits related to the use of data and copyrighted material in training generative AI models.
- Bias and fairness are major concerns in generative AI, as biases can propagate and magnify through the models.
- Transparency and explainability in AI decision-making are essential for building user trust and ensuring responsible practices.
- Accountability and responsibility for the outputs of generative AI systems are complex, as the technology involves multiple stakeholders.
- The regulatory landscape for generative AI is evolving, with various frameworks and guidelines emerging.
- Product managers need to closely align with legal counsel when developing generative AI products to mitigate legal risks.
- Careful consideration of data sources and data handling practices is crucial to avoid copyright and intellectual property issues.
- Engaging stakeholders throughout the product development process is essential for identifying and addressing ethical concerns.
- Balancing business goals with ethical considerations is a key challenge for product managers working on generative AI.
- Maintaining user trust and meeting user expectations through transparent and responsible design is crucial for generative AI products.
- Considering the long-term societal impacts of generative AI is an important responsibility for product managers.
- Implementing content moderation, user agreements, and monitoring systems can help establish guardrails for responsible generative AI usage.
- Alignment with human values, interpretable AI, and addressing the potential impact of artificial general intelligence (AGI) are key research areas.
- The line between what constitutes copyright infringement and fair use in generative AI is still blurry and evolving.
- Incremental steps and focusing on low-risk, high-value opportunities can be a more effective approach than aiming for the “moonshot” in generative AI development.
- Involving legal counsel at every stage of product development is crucial to navigate the complex legal landscape of ethics in generative AI.
- Leveraging open-source data sets and models can help mitigate intellectual property and copyright risks.
- Clear communication of ethical considerations, user safeguards, and monitoring systems is essential for responsible generative AI deployment.
About the speaker
Accomplished Product Management leader with impeccable experience in building successful enterprise SaaS and consumer products from 0 to 1. Deep expertise in Artificial Intelligence including Natural Language Processing, Virtual Assistants, Computer Vision, Autonomous Driving, and Predictive Analytics. Outside of my day job, I am a startup investor and also advise startups in the field of AI.
About the host
Nisarg is currently the Director of Product at cloud security unicorn Lacework, and has a decade of experience in Product Management with the entirety of his focus on securing enterprises from cyberattacks. He has built both 0-1 and 1-100 products in cybersecurity. He is passionate about pushing forward the field of product management by helping a diverse field of entrants grow into successful PMs. He lives in Boston, MA.