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Future of Jobs and Generative AI

The advent of large language models (LLMs) like ChatGPT promises to transform the workplace by automating or augmenting a wide range of occupational tasks. However, a single perspective cannot fully grasp both the opportunities and risks these technologies represent across industries, workers, businesses and society. This article analyzes the World Economic Forum’s recent white paper [1] assessing the impact of LLMs on jobs through the lens of Spiral Dynamics. This integral framework reveals how different value systems perceive threats and opportunities differently. Administrative roles face disruption but efficiency gains (Blue). Innovative businesses are pressured to adopt but see new revenue potential (Orange). Vulnerable workers require support amidst job transformations (Green). Policymakers struggle to holistically analyze systemic impacts (Yellow). Realizing the benefits of LLMs requires honoring multiple worldviews, evolving processes, encouraging innovation, caring for people and conducting systems analysis. The analysis provides insights into LLMs’ multi-dimensional impacts and underscores the need for inclusive dialogue and initiatives to shape the AI-enabled future of work.


Here are the key points:

  1. LLMs could significantly impact many jobs due to their ability to automate or augment language-based tasks, which account for an estimated 62% of work time.
  2. The analysis assessed over 19,000 work tasks across 867 occupations to assess their LLM exposure. Tasks with high automation potential are routine and repetitive clerical/administrative tasks. Tasks with high augmentation potential require more abstract reasoning and problem-solving. Tasks with lower exposure potential emphasize interpersonal interaction.
  3. Occupations with the highest automation potential include credit authorizers, telemarketers, statistical assistants, and tellers. Occupations with the highest augmentation potential include insurance underwriters, bioengineers, mathematicians, and editors. Occupations with lower exposure include counselors, clergy, home health aides, and lawyers.
  4. Adopting LLMs will also likely create new roles like AI developers, content creators, interface designers, data curators, and AI ethics specialists.
  5. The financial services and information technology industries have the overall highest potential exposure. The finance and IT functional areas also have increased exposure.
  6. Significant alignment exists between occupations this analysis identifies as having high augmentation potential and those the Future of Jobs Report found to have high expected job growth. Similarly, occupations with high automation potential align with declining occupations.
  7. The report concludes LLMs will transform jobs and tasks, requiring strategies by businesses and government to prepare workforces for the change through training, transition support, and social safety nets. Overall, LLMs present opportunities to raise productivity and create new jobs, if managed responsibly.



Spiral Dynamics stages



What color are you Spiral Dynamics?


ColorBeigePurpleRedBlueOrangeGreenYellowTurquoise
In a lifeSurvivalFamily relationsThe rule of forceThe power of truthCompetitionInterpersonal relationsFlexible streamThe Global vision
In a businessOwn farmFamily businessStarting up a personal businessBusiness Process ManagementProject managementSocial networksWin-Win-Win behaviorSynthesis

Here is an analysis of the World Economic Forum white paper on large language models and jobs through the lens of Spiral Dynamics stages:


Spiral Dynamics StageQuotes from Document
 Beige No relevant quotes
 Purple No relevant quotes
 Red No relevant quotes
 Blue "With 62% of total work time involving language-based tasks, the widespread adoption of LLMs, such as ChatGPT, could significantly impact a broad spectrum of job roles." (p.4) This reflects the blue focus on structure, process and order.
 Orange "Adopting LLMs will transform business and the nature of work, displacing some existing jobs, enhancing others and ultimately creating many new roles." (p.19) This reflects the orange drive for innovation and progress.
 Green "Governments can also partner with and support employers and educational institutions to provide training programs that prepare workers for the jobs that will grow and benefit the most from LLMs. Additionally, social safety nets and assistance in transitioning to new roles will need to be reimagined and be more precisely targeted for those most likely to be affected." (p.19) This reflects the green concern for people and relationships.
 Yellow "To assess the impact of LLMs on jobs, this paper provides an analysis of over 19,000 individual tasks across 867 occupations, assessing the potential exposure of each task to LLM adoption, classifying them as tasks that have a high potential for automation, high potential for augmentation, low potential for either or are unaffected (non-language tasks). The paper also provides an overview of new roles that are emerging due to the adoption of LLMs." (p.4) This reflects yellow's emphasis on complex systems analysis.
 Turquoise No relevant quotes


The document overall reflects blue, orange, and green worldviews, with some elements of yellow systems thinking. There are no clear expressions of the beige, purple, red or turquoise value systems. This analysis illustrates how technology impacts different aspects of society and values.



Threats



Here is an analysis of threats and affected stakeholders through the lens of Spiral Dynamics stages:


Spiral Dynamics StageThreatsAffected Stakeholders
 Beige No major threats identified N/A
 Purple No major threats identified N/A
 Red No major threats identified N/A
 Blue Disruption of administrative processes and routines Organizations, administrative staff
 Orange Pressure to rapidly adopt new technologies Businesses, managers
 Green Job losses, inequality, lack of support during transition Individual workers, marginalized groups, society
 Yellow Complexity of analyzing and managing impacts Policy-makers, business leaders
 Turquoise No major threats identified N/A


In summary, the blue stage is threatened by disruption of established administrative processes, the orange faces pressure to innovate, the green risks job losses and inequality, and the yellow struggles with complex systems analysis. This highlights how different worldviews perceive threats and opportunities from the same technology trend. A holistic perspective is needed to understand the range of stakeholders and design responsible policies.


Elon Musk said about the danger of artificial intelligence (A.I.) in an interview with Tucker Carlson in April 2023. Below you can read an abridged version of the results of our VUCA poll "A.I. and the end of civilization". The full version of the results is available for free in the FAQ section after login or registration.

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Country
Language
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Mail
Dib u qorid
Qiimaha Halis ah Wehliyaha xiriir ah
Qaybinta caadiga ah, by William Bads Gossist (Ardayga) r = 0.0763
Qaybinta caadiga ah, by William Bads Gossist (Ardayga) r = 0.0763
Qaybinta aan caadiga ahayn, by spearman r = 0.0031
QaybintaAan
caadi ahayn
Caadi ahAan
caadi ahayn
Caadi ahCaadi ahCaadi ahCaadi ahCaadi ah
Dhammaan su'aalaha
Dhammaan su'aalaha
1) Nabdoonaanta (Imisaad ku raacsan tahay ama aadan ku raacsaneyn?)
2) Xakamee (Imisaad ku raacsan tahay ama aadan ku raacsaneyn?)
1) Nabdoonaanta (Imisaad ku raacsan tahay ama aadan ku raacsaneyn?)
Answer 1-
Positive daciif ah
0.0780
Negative daciif ah
-0.0013
Positive daciif ah
0.1092
Negative daciif ah
-0.0965
Negative daciif ah
-0.0082
Negative daciif ah
-0.0554
Positive daciif ah
0.0083
Answer 2-
Positive daciif ah
0.0290
Negative daciif ah
-0.0016
Positive daciif ah
0.0401
Negative daciif ah
-0.0312
Positive daciif ah
0.0451
Positive daciif ah
0.0015
Negative daciif ah
-0.0620
Answer 3-
Negative daciif ah
-0.0142
Negative daciif ah
-0.0519
Negative daciif ah
-0.0059
Positive daciif ah
0.0485
Negative daciif ah
-0.0108
Negative daciif ah
-0.0076
Positive daciif ah
0.0174
Answer 4-
Positive daciif ah
0.0204
Positive daciif ah
0.0084
Positive daciif ah
0.0182
Negative daciif ah
-0.0414
Negative daciif ah
-0.0314
Negative daciif ah
-0.0132
Positive daciif ah
0.0495
Answer 5-
Negative daciif ah
-0.0036
Negative daciif ah
-0.0097
Negative daciif ah
-0.0185
Positive daciif ah
0.0477
Negative daciif ah
-0.0030
Positive daciif ah
0.0301
Negative daciif ah
-0.0557
Answer 6-
Negative daciif ah
-0.0414
Negative daciif ah
-0.0556
Negative daciif ah
-0.0823
Positive daciif ah
0.0795
Negative daciif ah
-0.0012
Positive daciif ah
0.0520
Positive daciif ah
0.0146
Answer 7-
Negative daciif ah
-0.0600
Positive daciif ah
0.1144
Negative daciif ah
-0.0542
Negative daciif ah
-0.0096
Positive daciif ah
0.0012
Negative daciif ah
-0.0080
Positive daciif ah
0.0241
2) Xakamee (Imisaad ku raacsan tahay ama aadan ku raacsaneyn?)
Answer 8-
Positive daciif ah
0.0283
Positive daciif ah
0.0174
Positive daciif ah
0.0583
Positive daciif ah
0.0581
Negative daciif ah
-0.0182
Negative daciif ah
-0.0745
Negative daciif ah
-0.0550
Answer 9-
Positive daciif ah
0.0097
Negative daciif ah
-0.0287
Negative daciif ah
-0.0387
Positive daciif ah
0.0305
Positive daciif ah
0.0863
Negative daciif ah
-0.0161
Negative daciif ah
-0.0470
Answer 10-
Positive daciif ah
0.0190
Negative daciif ah
-0.0334
Negative daciif ah
-0.0417
Negative daciif ah
-0.0013
Negative daciif ah
-0.0142
Positive daciif ah
0.0502
Positive daciif ah
0.0176
Answer 11-
Positive daciif ah
0.0358
Positive daciif ah
0.0118
Positive daciif ah
0.0160
Negative daciif ah
-0.0628
Negative daciif ah
-0.0127
Negative daciif ah
-0.0174
Positive daciif ah
0.0434
Answer 12-
Negative daciif ah
-0.0211
Positive daciif ah
0.0354
Positive daciif ah
0.0631
Positive daciif ah
0.0352
Negative daciif ah
-0.0736
Positive daciif ah
0.0029
Negative daciif ah
-0.0414
Answer 13-
Negative daciif ah
-0.1112
Negative daciif ah
-0.0452
Negative daciif ah
-0.0103
Positive daciif ah
0.0029
Positive daciif ah
0.0144
Positive daciif ah
0.0795
Positive daciif ah
0.0259
Answer 14-
Positive daciif ah
0.0038
Positive daciif ah
0.0641
Negative daciif ah
-0.0297
Negative daciif ah
-0.0850
Negative daciif ah
-0.0222
Positive daciif ah
0.0037
Positive daciif ah
0.0820


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Opportunities



Here is an analysis of opportunities and affected stakeholders through the lens of Spiral Dynamics stages:


Spiral Dynamics StageOpportunitiesAffected Stakeholders
 Beige No major opportunities identified N/A
 Purple No major opportunities identified N/A
 Red No major opportunities identified N/A
 Blue Increased efficiency of administrative processes Organizations, administrative staff
 Orange Creation of new business models and revenue streams Businesses, entrepreneurs
 Green Upskilling workers, maintaining an inclusive workforce Individual workers, marginalized groups, society
 Yellow Holistic analysis of technology's impact on work Policy-makers, business leaders
 Turquoise No major opportunities identified N/A


In summary, blue sees opportunities for improved efficiency, orange in innovation and profit, green in supporting workers, and yellow in systems analysis. This highlights how different worldviews perceive opportunities from the same technology trend. An integral perspective is required to balance opportunities for organizations and individuals.


GAP Analysis



Here is a GAP analysis from a Spiral Dynamics perspective:


Spiral Dynamics StageGAP Analysis
 Beige No major gap identified
 Purple No major gap identified
 Red No major gap identified
 Blue GAP: Lacks discussion of how to evolve administrative processes rather than just making existing ones more efficient
 Orange GAP: Could provide more examples of how new business models and industries could arise from LLMs
 Green GAP: More detail is needed on programs to support workers through transitions and ensure opportunities are inclusive
 Yellow GAP: Deeper analysis required on technological impacts across education, business, and government domains
 Turquoise GAP: Holistic vision absent - how could LLMs improve society and actualization beyond business impacts?


In summary, blue could be used more on process evolution, orange on business model innovation, green on worker support, yellow on cross-domain impacts, and turquoise on realizing higher human potential. This reflects common gaps faced when new technologies are viewed primarily through one worldview lens rather than holistically. An integral perspective is needed to fully understand impacts and opportunities.


Overcome Gaps



Here are some suggested measures to overcome the gaps through the lens of Spiral Dynamics perspective:


Spiral Dynamics StageSuggested Measures to Overcome GAPs
 Beige N/A
 Purple N/A
 Red N/A
 Blue Conduct process redesign workshops to evolve administrative workflows
 Orange Research case studies and build scenarios describing new LLMs-enabled business models
 Green Profile reskilling programs and multi-stakeholder partnerships to support workers
 Yellow Model impacts of LLMs on education, healthcare, government, and other complex systems
 Turquoise Envision how LLMs could advance human potential and consciousness evolution


In summary, suggested measures include:
  • Blue: Process redesign workshops
  • Orange: New business model research
  • Green: Reskilling program profiles
  • Yellow: Modelling systemic impacts
  • Turquoise: Envisioning advancing human potential

This highlights the value of taking a holistic perspective and utilizing tools and ways of thinking from multiple stages and worldviews to fully understand and act upon the opportunities presented by emerging technologies like large language models.


Conclusion



The Spiral Dynamics framework reveals that the opportunities and threats presented by large language models are perceived differently across value systems. Blue sees potential efficiency gains but disruption of administrative routines. Orange focuses on innovation possibilities but feels pressured to rapidly adopt. Green emphasizes supporting impacted workers but risks exacerbating inequalities. Yellow provides systems analysis but grapples with complexity.

Fully realizing the benefits of large language models in the workplace and society requires transcending any worldview. An integral approach that honors multiple perspectives is needed. This includes evolving processes, encouraging innovation, caring for people, and systemic analysis. Further, a holistic vision looks beyond business impacts to how emerging technologies can advance human potential and social actualization.

By understanding these different value perspectives, businesses, policymakers, and workers can collaboratively shape the future of work in the age of artificial intelligence. A shared vision arises when stakeholders cooperate across stages of psychological and social development. This white paper provides insights into the multi-dimensional impacts of large language models across industries, occupations, and societal roles. Yet more inclusive dialogue and initiatives are needed to proactively guide this technology for the benefit of all.


[1] https://www3.weforum.org/docs/WEF_Jobs_of_Tomorrow_Generative_AI_2023.pdf

2023.10.12
Valeri Kosenko
Milkiilaha wax soo saarka ee SAS PET PROSS SDTEst®

Valeri waxay u qalmay sidii barbaarin bulsheed-cilmi-nafsi-cilmu-nafsi sanadkii 1993, ilaa iyo markaasna wuxuu aqoon u yeeshay aqoontiisa mashruuca.
Valerikai waxay heshay shahaadada Masterka iyo is-ka-shaashadda mashruuca iyo heerka tababarka barnaamijka 2013. Intii uu socday barnaamijka sayidkiisa, wuxuu caan ku noqday mashruuca Qorshe-hawleedka (GPM Deutsche Gesellschaft für projektnaft für projektnaft) iyo dhaqdhaqaaqa dhaqdhaqaaqa.
Valerikai waxay qaadatay tijaabooyin kala duwan oo firfircoon oo firfircoon oo loo adeegsaday aqoontiisa iyo khibradiisa si ay ula qabsadaan nooca hadda ah ee SDTEst.
Valerika waa qoraaga sahaminta shaki la'aanta ee V.C.A. Fikradda iyadoo la adeegsanayo dhaqdhaqaaqa dhaqdhaqaaqa wareega iyo tirakoobka xisaabta ee cilmu-nafsiga, in ka badan 20 codbixin caalami ah.
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