Essay
AI - Artificial Intelligence
Culture
9 min read

Here’s why AI needs a theology of tech

As AI takes on tasks once exclusively human, we start to doubt ourselves. We need to set the balance right.

Oliver Dürr is a theologian who explores the impact of technology on humanity and the contours of a hopeful vision for the future. He is an author, speaker, podcaster and features in several documentary films.

In the style of an icon of the Council of Nicea, theologians look on as a cyborg and humanoid AI shake hands
The Council of Nicaeai, reimagined.
Nick Jones/Midjourney.ai

AI is all the rage these days. Researchers branching into natural and engineering sciences are thriving, and novel applications enter the market every week. Pop culture explores various utopian and dystopian future visions. A flood of academic papers, journalistic commentary and essays, fills out the picture.  

Algorithms are at the basis of most activities in the digital world. AI-based systems work at the interface with the analogue world, controlling self-driving cars and robots. They are transforming medical practices - predicting, preventing, diagnosing and supporting therapy. They even support decision-making in social welfare and jurisprudence. In the business sector, they are used to recruit, sell, produce and ship. Much of our infrastructure today crucially depends on algorithms. But while they foster science, research, and innovation, they also enable abuse, targeted surveillance, regulation of access to information, and even active forms of behavioural manipulation. 

The remarkable and seemingly intellectual achievements of AI applications uniquely confront us with our self-understanding as humans: What is there still categorically that distinguishes us from the machines we build? 

In all these areas, AI takes on tasks and functions that were once exclusive to humans. For many, the comparison and competition between humans and (algorithmically driven) machines are obvious. As these lines are written, various applications are flooding the market, characterized by their ‘generative' nature (generative AI). These algorithms, such OpenAI’s the GPT series, go further than anyone expected. Just a few years ago, it was hard to foresee that mindless computational programs could autonomously generate texts that appear meaningful, helpful, and in many ways even ‘human’ to a human conversation partner. Whether those innovations will have positive or negative consequences is still difficult to assess at this point.  

For decades, research has aimed to digitally model human capabilities - our perception, thinking, judging and action - and allow these models to operate autonomously, independent of us. The most successful applications are based on so-called deep learning, a variant of AI that works with neural networks loosely inspired by the functioning of the brain. Technically, these are multilayered networks of simple computational units that collectively encode a potentially highly complex mathematical function.  

You don’t need to understand the details to realize that, fundamentally, these are simple calculations but cleverly interconnected. Thus, deep learning algorithms can identify complex patterns in massive datasets and make predictions. Despite the apparent complexity, no magic is involved here; it is simply applied mathematics. 

Moreover, this architecture requires no ‘mental' qualities except on the part of those who design these programs and those who interpret their outputs. Nevertheless, the achievements of generative AI are astonishing. What makes them intriguing is the fact that their outputs can appear clever and creative – at least if you buy into the rhetoric. Through statistical exploration, processing, and recombination of vast amounts of training data, these systems generate entirely new texts, images and film that humans can interpret meaningfully.  

The remarkable and seemingly intellectual achievements of AI applications uniquely confront us with our self-understanding as humans: Is there still something categorically that distinguishes us from the machines we build? This question arises in the moral vacuum of current anthropology. 

Strictly speaking, only embodied, living and vulnerable humans really have problems that they solve or goals they want to achieve... Computers do not have problems, only unproblematic states they are in. 

The rise of AI comes at a time when we are doubting ourselves. We question our place in the universe, our evolutionary genesis, our psychological depths, and the concrete harm we cause to other humans, animals, and nature as a whole. At the same time, the boundaries between humans and animals and those between humans and machines appear increasingly fuzzy.  

Is the human mind nothing more than the sum of information processing patterns comparable to similar processes in other living beings and in machine algorithms? Enthusiastic contemporaries believe our current AI systems are already worthy of being called ‘conscious’ or even ‘personal beings.’ Traditionally, these would have been attributed to humans exclusively (and in some cases also to higher animals). Our social, political, and legal order, as well as our ethics, are fundamentally based on such distinctions.  

Nevertheless, companies such as OpenAI see in their product GPT-4 the spark of ‘artificial general intelligence,’ a form of intelligence comparable to or even surpassing humans. Of course, such statements are part of an elaborate marketing strategy. This tradition dates to John McCarthy, who coined the term “AI” and deliberately chose this over other, more appropriate, descriptions like “complex information processing” primarily because it sounded more fundable. 

Such pragmatic reasons ultimately lead to an imprecise use of ambiguous terms, such as ‘intelligence.’ If both humans and machines are indiscriminately called ‘intelligent,’ this generates confusion. Whether algorithms can sensibly be called ‘intelligent’ depends on whether this term refers to the ability to perform simple calculations, process data, the more abstract ability to solve problems, or even the insightful understanding (in the sense of Latin intellectus) that we typically attribute only to the embodied reason of humans.  

However, this nuanced view of ‘intelligence’ was given up under the auspices of the quest for an objectively scientific understanding of the subject. New approaches deliberately exclude the question of what intelligence is and limit themselves to precisely describing how these processes operate and function.  

Current deep learning algorithms have become so intricate and complex that we can’t always understand how they arrive at their results. These algorithms are transparent but not in how they reach a specific conclusion; hence, they are also referred to as black-box algorithms. Some strands in the cognitive sciences understand the human mind as a kind of software running on the hardware of the body. If that were the case, the mind could be explained through the description of brain states, just like the software on our computers.  

However, these paradigms are questionable. They cannot explain what it feels like to be a conscious person, to desire things, be abhorred by other things and to understand when something is meaningful and significant. They have no grasp on human freedom and the weight of responsibility that comes with leading a life. All of these human capacities require, among other things, an understanding of the world, that cannot be fully captured in words and that cannot be framed as a mathematical function.  

There are academic studies exploring the conception of embodied, embedded, enactive, and extended cognition, which offer a more promising direction. Such approaches explore the role of the body and the environment for intelligence and cognitive performance, incorporating insights from philosophy, psychology, biology, and robotics. These approaches think about the role our body as a living organism plays in our capacity to experience, think and live with others. AI has no need for such a living body. This is a categorical difference between human cognition and AI applications – and it is currently not foreseeable that those could be levelled (at least not with current AI architectures). Therefore, in the strictest sense, we cannot really call our algorithms ‘intelligent' unless we explicitly think of this as a metaphor. AI can only be called 'intelligent' metaphorically because these applications do not 'understand' the texts they generate, and those results do not mean anything to them. Their results are not based on genuine insight or purposes for the world in which you and I live. Rather they are generated purely based on statistical probabilities and data-based predictions. At most, they operate with the human intelligence that is buried in the underlying training data (which human beings have generated).  

However, all of this generated material has meaning and validity only for embodied humans. Strictly speaking, only embodied, living and vulnerable humans really have problems that they solve or goals they want to achieve (with, for example, the help of data-based algorithms). Computers do not have problems, only unproblematic states they are in. Therefore, algorithms appear 'intelligent' only in contexts where we solve problems through them. 

 When we do something with technology, technology always also does something to us. 

AI does not possess intrinsic intelligence and simulates it only due to human causation. Therefore, it would be more appropriate to speak of ‘extended intelligence': algorithms are not intelligent in themselves, but within the framework of human-machine systems, they represent an extension of human intelligence. Or even better would be to go back behind McCarthy and talk about 'complex information processing.’ 

Certainly, such a view is still controversial today. There are many philosophical, economic, and socio-political incentives to attribute human qualities to algorithms and, at the same time, to view humans as nothing more than biological computers. Such a view already shapes the design of our digital future in many places. Putting it bluntly, calling technology ‘intelligent’ makes money. 

What would an alternative, more holistic view of the future look like that took the makeup of humanity seriously?  

A theology of technology (Techniktheologie) tackles this question, ultimately placing it in the horizon of belief in God. However, it begins by asking how technology can be integrated into our lives in such a way that it empowers us to do what we truly want and what makes life better. Such an approach is neither for or against technology but rather sober and critical in the analytical sense. Answering those questions requires a realistic understanding of humans, technology, and their various entanglements, as well as the agreement of plural societies on the goals and values that make a good life.  

When we do something with technology, technology always also does something to us. Technology is formative, meaning it changes our experience, perception, imagination, and thus also our self-image and the future we can envision. AI is one of the best examples of this: designing AI is designing how people can interact with a system, and that means designing how they will have to adapt to it. Humans and technology cannot be truly isolated from each other. Technology is simply part of the human way of life.  

And yet, we also need to distinguish humans from technology despite all the entanglements: humans are embodied, rational, free, and endowed with incomparable dignity as images of God, capable of sharing values and articulating goals on the basis of a common (human) way of life. Even the most sophisticated deep learning applications are none of these. Only we humans live in a world where responsibility, sin, brokenness, and redemption matter. Therefore it is up to us to agree on how we want to shape the technologized future and what values should guide us on this path.  

Here is what theology can offer the development of technology. Theology addresses the question of the possible integration of technology into the horizon of a good life. Any realistic answer to this question must combine an enlightened understanding of technology with a sober view of humanity – seeing both human creative potential and their sinfulness and brokenness. Only through and with humans will our AI innovations genuinely serve the common good and, thus, a better future for all.  

 

Find out more about this topic: Assessing deep learning: a work program for the humanities in the age of artificial intelligence 

Article
AI - Artificial Intelligence
Character
Culture
Digital
7 min read

Apple’s AI ads show how we can lose our moral skills

Apple Intelligence promises to safeguard us from the worst of ourselves.

Jenny is training to be a priest. She holds a PhD in law and writes at the intersection of law, politics and theology.

A worker at a desk sits back contemplating a situation
Dour Dale contemplates AI.
Apple.

“I got through the three stages of the interview process, and they said I had done well, but they aren’t hiring any computer science graduates anymore. AI is cheaper, and faster.”

John*, a bright 24-year-old coder and philosopher, has just completed an MSc in Computer Science from one of the top universities in the UK. And he can’t find a job. AI has outcompeted him. In a couple of years, he says, entry level into computer science as a field will require a PhD. What about in ten years, or twenty? Will the only people able to work in the field have to effectively be geniuses to keep up with a technology that’s metastasizing at the rate of knots? It felt painfully ironic to be discussing over coffee the death of an entire sector of meaningful jobs less than a week after the new Labour government announced its plans to “turbocharge” AI (Artificial Intelligence) as the saviour of the nation’s economy. What are we willing to sacrifice in the name of “national renewal”?  

As worrying as John’s story is, there is much more than jobs – and the skills, knowledge and social relations tied up in them – on the line when it comes to AI. The alleged saviour of the nation’s economy is after your soul as well, it turns out.  

This came home to me starkly over the Christmas holidays with the new advertisements for Apple Intelligence tools on MacBook Pro. In the first ad, “Lazy Lance” – a procrastinating business professional – sheepishly shifts in his seat. He has been asked to make a presentation on the new business prospectus, and he has been caught out, unprepared. But he is saved at the last moment. The click of the “Key Points” button using the new Apple Intelligence software on his MacBook Pro provides him with the critical breakdown summary needed to avoid becoming the pariah of the team. The sheepish shifting turns to smug smile: his substandard performance has evaded detection with the ready aid of Apple Intelligence.  

In the second ad, “Dour Dale” – a disgruntled office worker – writes a scathing email to the “monster” who has devoured his pudding from the communal fridge. Before clicking send on this missive, he raises his eyes from the raging words on his screen to see a pious teddy bear holding a love-heart which says “find your kindness.” This moral cue from a cuddly toy prompts Dave to select the “Friendly” button from the dropdown list on Apple Intelligence writing tools, which immediately converts his childish strop over pudding thievery into a mature response in which he kindly expresses his disappointment along with a polite request for the pudding to be returned. The only moral effort required of Dale is the click of a button; Apple Intelligence sorts out the bile and the blame and re-presents his pudding fury in a professionally palatable manner.  

These advertisements for AI tools are designed to provoke an empathetic laugh. Who indeed can honestly say they have never arrived unprepared to a meeting, or at least mentally penned a vindictive response to the tiniest office slight?  

AI is poised to strike at the root of our individual virtue, by inserting itself as an emotional regulator. 

However, underneath the easy laughs, I felt a profound sense of dis-ease when watching them. They indicate just how far AI has already begun to penetrate our moral economy. By inserting a technological tool to disguise or translate social interactions into new terms, our moral relations with each other are deceptively smoothed to avoid the social and personal costs of shame (e.g. Lance using “Key Points” rather than owning up to his poor work ethic) and anger (e.g. Dale using “Friendly” mode to transform his email from raging diatribe into courteous appeal). As appealing as it sounds to have automatic tech weapons to tranquilise social and emotional bugbears, they also remove daily opportunities to learn how to live and work together.  

For example, as excruciating as it is to be the person who came to the meeting woefully under-prepared, embarrassment can be a very useful corrective in learning the art of time management as well as the virtue of pulling our weight. We probably all know from school what it feels like to work on a group project, when only half the group cares about the outcome. If we do not learn moral skills of responsibility and accountability in our formative years, the workplace becomes a vital school for virtue in adulthood where we learn what it means to be trusted and how to be worthy of it. As in the case of Lance, AI now offers us everyday tools which help us to avoid embarrassment and effectively hide our lack of effort, taking the edge off of the very exposure that would help us to grow in both skill and trustworthiness. This is not propaganda for the Protestant work ethic but rather a top survival tip for the human soul in hyper-capitalist economy. Maintaining the moral significance of our labour as a school of formation in self-respect and trustworthiness does not baptise the extractive and exploitative nature of many workplaces. Rather, it offers a means of resistance to the soul-destroying idea that we are all replaceable, that nothing really matters and that our efforts are simply grist for the eternal and insatiable mill of market supply and demand.

In the case of Dale, Apple Intelligence goes beyond protecting users from social shame: it promises to safeguard us from the worst of ourselves. Of the two Apple Intelligence advertisements, I find Dale’s to be even more pernicious because it evidences how AI is poised to strike at the root of our individual virtue, by inserting itself as an emotional regulator. Rather than doing the difficult work of redrafting the email himself, which would require Dale to critically examine his own reactions and put himself into the shoes of the recipient, Apple Intelligence offers to do it automatically. By short-circuiting Dale’s process of recognising the emotions underneath his rage, he misses a critical opportunity to learn for himself what his anger is all about, and even more than that, to practice the art of genuine self-mastery in conflict. The AI tool smooths out the conflict on the surface, while Dale is presumably left with all those rotten feelings built up and unprocessed, because he has not had to do the difficult work of converting his aggressive monologue into a respectful dialogue with another human being.

The insertion of these seemingly innocuous AI tools into the spheres of our everyday, workaday lives introduces new means and modes of (self) deception in our habits, where we are able to hide much more easily from honest moral evaluation of the quality of our work as well as our interpersonal relationships. It also risks new heights of moral “de-skilling” over time as we live in a social and economic world that has become so deeply mediated by technology, to the point where we may very well eventually trust Apple as the gold standard of professional behaviour rather than our own discernment. The soul – our very interiority – is the new frontier of economic expansion, in the name of securing Britain’s place in the ranks of global competitiveness.

To AI enthusiasts, all this may sound like Luddite naysaying. Many people find AI tools helpful in the process of research and preparation. Even some priests, I have recently discovered, use Chat GPT to aid sermon-writing. And what, as a priest friend asked me recently, is the problem with these time-saving tools, as long as we use them critically?

Apart from the obvious answer that AI can’t be trusted to get all the facts right, let alone the word of God, this question presumes that human beings’ critical faculties and moral compasses remain fundamentally unaffected by these new technologies. It may be true for older generations (whose formative years occurred well before the meteoric surge of digital technology in the early 2000s) that technology continues to function as an optional extra to make life that little bit easier. But for Gen Z and below, and even for some younger millennials, intuitive digital technologies have become so fused with the ways that we learn and process information that it is no longer – if it ever was – a neutral tool to improve our lives. We are only learning now about the extent to which social media has thoroughly penetrated the emotional worlds of teenagers, with severe consequences for their wellbeing. What will be the consequences for the generations to come, when AI becomes so integrated into the emotional and social fabric of our lives that we cannot quite tell where we start and it begins? The risk with “turbocharging” AI is not only a huge number of jobs, but the atrophy of our moral muscles as AI encroaches further into the heartlands of what it means to be human. While a few tech elites may always stay one step ahead of AI and keep it safely in the toolbox rather than the driver’s seat, most of us time-poor plebians are being taken for the ride of our lives.

 

 *Name changed for anonymity. 

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