114本のエピソード

Your bite-sized dose of data stories, professional interviews, and latest trends in the world of data. Join the Women in Data Community here: https://womenindata.mn.co/sign_up Support this podcast: https://podcasters.spotify.com/pod/show/women-in-data/support

Data Bytes Women in Data

    • テクノロジー

Your bite-sized dose of data stories, professional interviews, and latest trends in the world of data. Join the Women in Data Community here: https://womenindata.mn.co/sign_up Support this podcast: https://podcasters.spotify.com/pod/show/women-in-data/support

    Mathematics, AI, and Beyond: Exploring the Intersection

    Mathematics, AI, and Beyond: Exploring the Intersection

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    (00:00:00) Importance of changing the way we teach math to be more inclusive.

    (00:00:34) Introduction to the podcast guest, author and professor.

    (00:00:58) Teaching at James Madison University; living in Alexandria, VA.

    (00:01:28) Balancing in-person, hybrid, and online teaching formats.

    (00:02:05) Overview of the book, "Essential Math for AI."

    (00:02:27) Inspiration for writing the book; addressing the needs in AI education.

    (00:04:11) Key concepts: types of intelligence, core mathematical foundations for AI.

    (00:05:00) Starting points for learning math relevant to AI: calculus, linear algebra, probability.

    (00:05:14) Connecting math learning to real-life applications for better understanding.

    (00:06:12) Discussing the struggle with abstract math education and its real-world application.

    (00:07:20) Changing how math is taught to retain more talented individuals.

    (00:08:55) Addressing the fear of math and the impact on AI engagement.

    (00:09:38) Overcoming math anxiety by setting clear goals and self-teaching.

    (00:11:48) How AI advancements will change mathematics education.

    (00:12:01) Benefits of AI in education, including automation and personalized learning.

    (00:15:02) Historical perspective on the evolution of work and technology.

    (00:15:29) Embracing fast technological advancements for societal benefits.

    (00:17:20) Mathematics as a truth filter in the age of information.

    (00:18:27) New book on prompting and data engineering.

    (00:19:25) Exploring the intersection of AI models and data pipelines.

    (00:21:09) The end-to-end story of AI from hardware to organizational strategy.

    (00:21:45) The importance of understanding the bigger picture in AI.

    (00:23:01) Journey into mathematics and AI, starting from Lebanon.

    (00:25:44) Advice for young people navigating today's environment.

    (00:26:08) Being true to oneself and seeking knowledgeable mentors.


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    • 30分
    How to Elevate Your Data Journey

    How to Elevate Your Data Journey

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    (Intro 00:00:00) Companies leaping into AI without solid data foundations.

    (00:01:12) Importance of conferences for connecting and learning.

    (00:01:26) Christina emphasizes energy and storytelling at tech conferences.

    (00:02:17) LinkedIn connections making conference experiences better.

    (00:02:33) Christina’s background at Google and Waze.

    (00:03:13) Analytics ascendancy model explained.

    (00:04:10) Common issue of companies jumping into AI prematurely.

    (00:05:38) Importance of sequential steps in the analytics journey.

    (00:06:23) Christina’s ACE framework (Advise, Create, Educate).

    (00:07:06) Roles of advising, creating content, and educating.

    (00:08:22) Handling C-suite pressure regarding AI hype.

    (00:09:07) Evaluating current capabilities and setting expectations.

    (00:10:27) Common pitfalls in the analytics journey.

    (00:12:20) Challenges and risks in advanced analytics.

    (00:13:57) Regulation and risk in finance and healthcare.

    (00:14:59) Responsibility for assessing risk and regulation.

    (00:15:19) Cross-functional nature of risk assessment.

    (00:16:12) Advice on continuing the analytics journey.

    (00:16:44) Maintaining a positive mindset and continuous learning.

    (00:18:27) Future role of AI in analytics.

    (00:19:41) AI’s potential and limitations in turbocharging analytics.

    (00:21:49) Christina’s personal analytics journey.

    (00:22:27) From studying statistics to founding Dare to Data.

    (00:25:33) Advice for aspiring data professionals.

    (00:25:37) Importance of curiosity, learning, and communication skills.

    (00:27:14) Being a translator between business and technology.

    (00:27:49) Christina’s SQL courses on LinkedIn Learning.

    (00:28:35) Future courses and learning opportunities.


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    • 30分
    AI Adoption with Sol Rashidi

    AI Adoption with Sol Rashidi

    (00:00:00) - Introduction by Sol Rashidi on data management challenges.(00:00:36) - Sadie welcomes Sol and discusses her background and accolades.
    (00:02:21) - Sol addresses the impact of AI hype on C-suite roles and data governance.
    (00:03:17) - Sol explains her approach to overcoming data challenges.(00:04:16) - Discussion on the evolving roles within the C-suite and the challenges of unclear division of labor.
    (00:05:59) - Sol on the responsibilities of a chief AI officer and the practical challenges in strategy and delivery.
    (00:07:05) - Sadie and Sol discuss the added complexity of new C-suite roles.
    (00:08:16) - Sol outlines an ideal CDO role and its necessary scope.(00:10:58) - Sol discusses professional relationships within the C-suite and strategies for negotiation.
    (00:14:28) - Sol promotes a course on transitioning from a practitioner to the C-suite.
    (00:15:12) - Discussion on the challenges and strategies for effective leadership in the C-suite.
    (00:18:23) - Sol on learning from failures and the importance of asking for what you want.
    (00:21:17) - Discussion on why few women hold leadership positions and how to negotiate effectively.
    (00:26:08) - Sadie discusses the role of tools like ChatGPT in professional communication.
    (00:30:06) - Sol shares her plans post-retirement and her new book release.


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    • 34分
    Retrieval Augmented Generation and the Evolution of Data Science Roles

    Retrieval Augmented Generation and the Evolution of Data Science Roles

    [00:00:00] Intro and discussion on information retrieval
    [00:00:36] Sadie welcomes Harpreet, discussing his achievements and connections
    [00:01:46] Early interactions and courses between Harpreet and Sadie
    [00:02:27] Updates on Sadie's SQL course and new roles
    [00:03:42] Harpreet discusses following curiosity in his career and AI's growth
    [00:06:55] Future of data science roles and specialization within the field
    [00:09:40] Unique skills of data scientists and transition to deep learning
    [00:15:23] Discussion on benchmarks, datasets, and introduction to retrieval augmented generation (RAG)
    [00:20:16] Explanation and potential applications of RAG models
    [00:24:09] AI applications in various industries and predictions for future AI integration
    [00:29:02] Harpreet's personal productivity gains from AI and new tools enhancing workflows
    [00:34:58] Harpreet's podcast impact on his career and future plans
    [00:40:44] Recommendations for staying updated in deep learning
    [00:45:36] Harpreet invites listeners to join his new research initiative


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    • 50分
    Effective Strategies for Data and AI Literacy

    Effective Strategies for Data and AI Literacy

    Intro [00:00:00]

    Priscila discusses the importance of an accessible data infrastructure and data literacy.

    [00:00:41] Sadie:

    Introduction of Priscila Papazisis, her achievements and roles.

    [00:01:06] Sadie:

    Discussion on AI and data literacy strategies for organizations.

    [00:01:27] Priscila:

    Priscila responds about strategies for fostering data literacy in organizations.

    [00:02:03] Priscila:

    Importance of executive support in building a data-driven culture.

    [00:02:36] Priscila:

    Training programs for data literacy across various companies.

    [00:03:05] Priscila:

    Reiteration of the need for accessible data infrastructure.

    [00:03:42] Priscila:

    Emphasizes employee engagement with data for decision-making.

    [00:04:12] Priscila:

    Continuous improvement and promoting an environment for feedback.

    [00:04:36] Sadie:

    Challenges in providing and encouraging training in organizations.

    [00:05:07] Priscila:

    Finding time and interest for employee training in a busy schedule.

    [00:06:25] Priscila:

    Importance of understanding statistical concepts, data visualization, and AI in business.

    [00:07:39] Priscila:

    Critical thinking and application of AI and machine learning in business.

    [00:08:20] Priscila:

    Understanding industry trends and market dynamics.

    [00:08:50] Sadie:

    Priscila shares examples of business value from data literacy programs.

    [00:09:10] Priscila:

    Story about enhancing logistics in a health insurance company.

    [00:10:23] Priscila:

    The impact of data literacy programs she initiated.

    [00:11:16] Priscila:

    Operational improvements from data-driven decisions.

    [00:12:42] Priscila:

    Importance of practical results from data products.

    [00:13:19] Priscila:

    Engaging in continuous learning and leveraging data literacy.

    [00:14:10] Sadie:

    Discussing common pitfalls in implementing data and AI programs.

    [00:14:28] Priscila:

    Key challenges and advice for data and AI program implementation.

    [00:16:45] Sadie:

    Advice for individuals improving their data and AI literacy.

    [00:17:09] Priscila:

    Recommended resources and personal approaches to data literacy.

    [00:18:37] Priscila:

    Emphasis on data storytelling and problem-solving with data.

    [00:20:42] Sadie:

    The role of storytelling in data and AI.

    [00:21:11] Sadie:

    Priscila's journey into the data field.

    [00:22:10] Priscila:

    Career path and evolution in data roles.

    [00:23:16] Priscila:

    Contributions to the data community and networking.

    [00:25:36] Sadie:

    The value of community in data and AI.

    [00:26:27] Sadie:

    Final advice for women in data and AI careers.


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    • 28分
    How to cultivate a growth mindset

    How to cultivate a growth mindset

    [00:00:00] - Ania discusses her approach to energy use and following curiosity without questioning its practicality.

    [00:00:34] - Introduction of Ania Cwojdzinska as a vibrant member of the Women in Data community, mentioning her background and achievements.

    [00:01:24] - Sadie asks Ania about the intersection of data science and psychology and how Ania incorporates both in her work.

    [00:03:02] - Ania shares her journey into data science during her PhD, highlighting the benefits of interdisciplinary approaches.

    [00:04:52] - Discussion on the rigors of academic research and its relevance to data careers.

    [00:05:47] - Ania talks about her surprise at the continued use of Excel in industry and the transition from academia to industry.

    [00:08:05] - Sadie inquires if Ania has started using Excel in her industry work.

    [00:08:27] - Exploring Ania's growth mindset and whether it was innate or developed over time.

    [00:10:46] - Ania discusses leading the growth group for Women in Data and the various activities and workshops they conduct.

    [00:13:35] - The unique aspects of the Women in Data growth group and its contribution to the community.

    [00:14:42] - The inclusivity and openness of the Women in Data community.

    [00:15:33] - Ania reflects on her advice for women in data careers, emphasizing self-awareness and the blend of personal interests with professional skills.

    [00:20:16] - Sadie thanks Ania for her mentorship and contributions to the community.

    [00:20:45] - Ania shares her most proud accomplishments: fostering lifelong friendships and achieving self-contentment.

    [00:24:31] - Sadie and Ania discuss redefining success and the importance of being comfortable and happy with oneself.


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    • 27分

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