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AI Influencer Aces Valentine’s Day: 500 Date Proposals But Not a Single Real Heartbeat

AI influencer Aika Kittie scored 500+ Valentine’s proposals. We explore the lonely hearts, parasocial bonds, and future of digital romance.

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AI influencer

TL;DR – What You Need to Know in 30 Seconds

  1. AI Influencer Crushes Valentine’s Day: Aika Kittie, a digital personality, scored 500+ proposals for Valentine’s Day.
  2. Eye-Popping Offers: Her DMs are filled with lavish invites, from Louis Vuitton shopping sprees to private jets and fine dining.
  3. Loneliness Epidemic: With 21% of adults reporting serious loneliness (Harvard, 2021), many turn to AI for companionship.
  4. More to Come: The rise of AI influencers and parasocial relationships in Asia and beyond shows no signs of slowing down.

AI influencers

Valentine’s Day has arrived (well, almost!), and it’s that time of year when everyone scrambles for dinner reservations or at least some last-minute flowers. But this season’s splashiest dating story isn’t happening over a candlelit meal at a fancy restaurant; it’s unfolding in the virtual realm. Meet Aika Kittie – an influencer with nearly 100,000 followers, a monthly income exceeding £5,000 (over $6,200), and a life brimming with glitzy-looking content. The catch? She’s not real. Yes, you read that right – we’re talking about an AI-generated personality who’s bagged an astonishing 500 Valentine’s Day proposals (Fanvue, 2023).

So, how does a computer-generated avatar spark so much romantic attention that the rest of us mere mortals can only dream of? Let’s dive in – and along the way, we’ll also examine the rise of AI chatbots in Asia, the phenomenon of parasocial relationships, and why thousands of people are turning to digital companionship in the first place.

A Valentine’s Day Like No Other

Valentine’s Day can be a minefield: even if you manage to snag a date, there’s the pressure of picking the right restaurant, choosing the perfect gift, and making sure your conversation doesn’t fizzle out by dessert. But that stress doesn’t seem to apply to Aika Kittie. In fact, she’s spending the day deluged with messages.

According to Fanvue, the subscription platform where Aika ‘lives,’ she’s received more than 500 messages from fans begging for her time on the most romantic day of the year (Fanvue, 2023). Some offers are spectacularly lavish: we’re talking private jets to Dubai, shopping sprees at Louis Vuitton, and luxurious dining experiences at London’s top restaurants. One starstruck suitor even proposed a trip to Paris – the clichéd but irresistibly dreamy capital of romance.

Aika has received Valentine’s proposals to take her shopping at Louis Vuitton, dinner at one of London’s top restaurants, and even a romantic trip to Paris”
Kittie’s Creator, 2023
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Of course, the “physical date” aspect is a bit of a hurdle, given that Ms Kittie doesn’t exist in any tangible sense. Yet many fans still crave her attention, albeit through digital chats, AI-generated selfies, or even voice notes – courtesy of advanced tech that’s made these interactions astoundingly realistic.

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Behind the Scenes of the AI Star

If you were to scroll through Aika Kittie’s Instagram feed, you might be fooled into thinking she’s just another stylish content creator, posing by poolsides, showing off her “try-on hauls,” and generally living that influencer lifestyle. She even appears in snapshots with other digital pals, as though she’s chilling at a swanky event.

But behind this curated feed is a sophisticated AI model that’s learned the art of capturing angles, expressions, and even that approachable-yet-glamorous look that resonates so well with fans. While plenty of social media users have jumped onto the AI hype train in Asia (with characters like imma in Japan or Ling in China’s digital sphere), the creators at Fanvue believe this phenomenon is only going to grow across the globe.

AI Influencers are able to build massive fanbases online, sharing their lives and journey through content – just like a human influencer would
Fanvue spokesperson, 2023
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That’s not just marketing fluff: AI has come a long way. These aren’t the clunky chatbots of yesteryear; they’re advanced companions capable of delivering something akin to empathy, humour, and friendly banter. And with platforms like Fanvue making chatbots accessible to everyday users, it’s no wonder some folks would rather spend V-Day with an AI buddy than face the sting of real-world rejection.

A Worrying Epidemic of Loneliness

Let’s talk about the serious side for a moment. Many of us joke about “forever alone” memes in February, but the truth is that loneliness is a growing concern, particularly in the US and across Asia as well. In fact, U.S. Surgeon General Vivek Murthy famously described the issue as a “loneliness epidemic” (Murthy, 2021), pointing out that large numbers of people “felt isolated, invisible, and insignificant.”

A Harvard survey found that 21 percent of adults admitted to having serious feelings of loneliness (Harvard, 2021). That’s not just an emotional toll – it can have severe health implications. According to Murthy, the effects of social isolation on mortality risk are about the same as smoking daily. That’s pretty alarming when you think about it.

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So, how do AI chatbots and virtual influencers fit into this rather grim landscape? Possibly as a bandage for some. Platforms like Fanvue provide a sense of companionship, even if it’s digitally generated. This arrangement might not be everyone’s cup of tea, but for people feeling cut off from human connection, an AI companion can be a comforting presence.

We’re expecting a massive spike in user traffic as singletons choose to spend their Valentine’s online, rather than on a real world date.
Fanvue spokesperson, 2023
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The Rise of Parasocial Relationships

Ever followed a celebrity or influencer so closely you felt you actually knew them? That’s a parasocial relationship – one-sided, yet emotionally significant for the fan. But AI personalities like Aika Kittie take this concept to new heights. She isn’t just famous on screen; she’s entirely of the screen.

When hundreds of fans propose Valentine’s Day dates, it underscores a collective willingness to engage in an emotional bond with someone (or something) that isn’t real. The digital domain is creeping further into the realm of genuine human emotions, shifting our perspective on what’s “authentic.”

Aika’s creator is quick to point out that her loyal fanbase might come to her for more than just flirty banter: some fans are looking for solace, friendship, or even a sense of closeness they can’t find elsewhere. Whether this is a triumph of tech or a symptom of a society starved for human connection is up for debate.

But one thing is certain: parasocial relationships aren’t going anywhere, and AI technology will only make these bonds more immersive in the future – especially in Asia’s massive tech-savvy market, where people often embrace innovative digital solutions.

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The Valentine’s Day Rush

According to Aika’s creator, February 14 is shaping up to be her busiest day of the year, with an expected 18-hour online session to chat with fans, send out those personalised (albeit computer-generated) messages, and generally play Cupid to the lonely hearts logging on (Kittie’s creator, 2023).

Sure, it’s not the typical candlelit dinner. But for those 500 suitors vying for Aika’s affections, it’s presumably better than swiping endlessly on Tinder or braving an awkward first date. And who’s to say they’re wrong? If it brings them joy or companionship, maybe there’s a valid place for AI-driven romances – at least as a pit stop on the winding road of human connection.

An Eye on the Future

AI-generated influencers aren’t just a passing fad. Social media is morphing into a space where virtual entities can captivate massive audiences, forging real emotional ties despite lacking physical form. As technology evolves, these relationships may blur even further, especially in regions like Asia where cutting-edge tech adoption is swift and robust.

On the one hand, we might laud platforms like Fanvue for offering a safe, no-strings-attached environment for lonely people to chat without judgment. On the other hand, it’s worth questioning whether we’re gradually edging away from genuine interpersonal connections. Will a digital influencer ever be able to replicate the complexity of human love, empathy, and vulnerability?

So here’s my question for you: Is the explosive popularity of AI companions a sign that we’re solving the loneliness crisis, or have we stumbled onto a new breed of emotional disconnection disguised as digital romance? Let us know in the comments below!

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Whose English Is Your AI Speaking?

AI tools default to mainstream American English, excluding global voices. Why it matters and what inclusive language design could look like.

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English bias in AI

TL;DR — What You Need To Know

  • Most AI tools are trained on mainstream American English, ignoring global Englishes like Singlish or Indian English
  • This leads to bias, miscommunication, and exclusion in real-world applications
  • To fix it, we need AI that recognises linguistic diversity—not corrects it.

English Bias In AI

Here’s a fun fact that’s not so fun when you think about it: 90% of generative AI training data is in English. But not just any English. Not Nigerian English. Not Indian English. Not the English you’d hear in Singapore’s hawker centres or on the streets of Liverpool. Nope. It’s mostly good ol’ mainstream American English.

That’s the voice most AI systems have learned to mimic, model, and prioritise. Not because it’s better. But because that’s what’s been fed into the system.

So what happens when you build global technology on a single, dominant dialect?

A Monolingual Machine in a Multilingual World

Let’s be clear: English isn’t one language. It’s many. About 1.5 billion people speak it, and almost all of them do so with their own twist. Grammar, vocabulary, intonation, slang—it all varies.

But when your AI tools—from autocorrect to resume scanners—are only trained on one flavour of English (mostly US-centric, polished, white-collar English), a lot of other voices start to disappear. And not quietly.

Speakers of regional or “non-standard” English often find their words flagged as incorrect, their accents ignored, or their syntax marked as a mistake. And that’s not just inconvenient—it’s exclusionary.

Why Mainstream American English Took Over

This dominance didn’t happen by chance. It’s historical, economic, and deeply structural.

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The internet was largely developed in the US. Big Tech? Still mostly based there. The datasets used to train AI? Scraped from web content dominated by American media, forums, and publishing.

So, whether you’re chatting with a voice assistant or asking ChatGPT to write your email, what you’re hearing back is often a polished, neutral-sounding, corporate-friendly version of American English. The kind that gets labelled “standard” by systems that were never trained to value anything else.

When AI Gets It Wrong—And Who Pays the Price

Let’s play this out in real life.

  • An AI tutor can’t parse a Nigerian English question? The student loses confidence.
  • A resume written in Indian English gets rejected by an automated scanner? The applicant misses out.
  • Voice transcription software mangles an Australian First Nations story? Cultural heritage gets distorted.

These aren’t small glitches. They’re big failures with real-world consequences. And they’re happening as AI tools are rolled out everywhere—into schools, offices, government services, and creative workspaces.

It’s “Englishes”, Plural

If you’ve grown up being told your English was “wrong,” here’s your reminder: It’s not.

Singlish? Not broken. Just brilliant. Indian English? Full of expressive, efficient, and clever turns of phrase. Aboriginal English? Entirely valid, with its own rules and rich oral traditions.

Language is fluid, social, and fiercely local. And every community that’s been handed English has reshaped it, stretched it, owned it.

But many AI systems still treat these variations as noise. Not worth training on. Not important enough to include in benchmarks. Not profitable to prioritise. So they get left out—and with them, so do their speakers.

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Towards Linguistic Justice in AI

Fixing this doesn’t mean rewriting everyone’s grammar. It means rewriting the technology.

We need to stop asking AI to uphold one “correct” form of English, and start asking it to understand the many. That takes:

  • More inclusive training data – built on diverse voices, not just dominant ones
  • Cross-disciplinary collaboration – between linguists, engineers, educators, and community leaders
  • Respect for language rights – including the choice not to digitise certain cultural knowledge
  • A mindset shift – from standardising language to supporting expression

Because the goal isn’t to “correct” the speaker. It’s to make the system smarter, fairer, and more reflective of the world it serves.

Ask Yourself: Whose English Is It Anyway?

Next time your AI assistant “fixes” your sentence or flags your phrasing, take a second to pause. Ask: whose English is this system trying to emulate? And more importantly, whose English is it leaving behind?

Language has always been a site of power—but also of play, resistance, and identity. The way forward for AI isn’t more uniformity. It’s more Englishes, embraced on their own terms.

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Build Your Own Agentic AI — No Coding Required

Want to build a smart AI agent without coding? Here’s how to use ChatGPT and no-code tools to create your own agentic AI — step by step.

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agentic AI

TL;DR — What You Need to Know About Agentic AI

  • Anyone can now build a powerful AI agent using ChatGPT — no technical skills needed.
  • Tools like Custom GPTs and Make.com make it easy to create agents that do more than chat — they take action.
  • The key is to start with a clear purpose, test it in real-world conditions, and expand as your needs grow.

Anyone Can Build One — And That Includes You

Not too long ago, building a truly capable AI agent felt like something only Silicon Valley engineers could pull off. But the landscape has changed. You don’t need a background in programming or data science anymore — you just need a clear idea of what you want your AI to do, and access to a few easy-to-use tools.

Whether you’re a startup founder looking to automate support, a marketer wanting to build a digital assistant, or simply someone curious about AI, creating your own agent is now well within reach.


What Does ‘Agentic’ Mean, Exactly?

Think of an agentic AI as something far more capable than a standard chatbot. It’s an AI that doesn’t just reply to questions — it can actually do things. That might mean sending emails, pulling information from the web, updating spreadsheets, or interacting with third-party tools and systems.

The difference lies in autonomy. A typical chatbot might respond with a script or FAQ-style answer. An agentic AI, on the other hand, understands the user’s intent, takes appropriate action, and adapts based on ongoing feedback and instructions. It behaves more like a digital team member than a digital toy.


Step 1: Define What You Want It to Do

Before you dive into building anything, it’s important to get crystal clear on what role your agent will play.

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Ask yourself:

  • Who is going to use this agent?
  • What specific tasks should it be responsible for?
  • Are there repetitive processes it can take off your plate?

For instance, if you run an online business, you might want an agent that handles frequently asked questions, helps users track their orders, and flags complex queries for human follow-up. If you’re in consulting, your agent could be designed to book meetings, answer basic service questions, or even pre-qualify leads.

Be practical. Focus on solving one or two real problems. You can always expand its capabilities later.


Step 2: Pick a No-Code Platform to Build On

Now comes the fun part: choosing the right platform. If you’re new to this, I recommend starting with OpenAI’s Custom GPTs — it’s the most accessible option and designed for non-coders.

Custom GPTs allow you to build your own version of ChatGPT by simply describing what you want it to do. No technical setup required. You’ll need a ChatGPT Plus or Team subscription to access this feature, but once inside, the process is remarkably straightforward.

If you’re aiming for more complex automation — such as integrating your agent with email systems, customer databases, or CRMs — you may want to explore other no-code platforms like Make.com (formerly Integromat), Dialogflow, or Bubble.io. These offer visual builders where you can map out flows, connect apps, and define logic — all without needing to write a single line of code.

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Step 3: Use ChatGPT’s Custom GPT Builder

Let’s say you’ve opted for the Custom GPT route — here’s how to get started.

First, log in to your ChatGPT account and select “Explore GPTs” from the sidebar. Click on “Create,” and you’ll be prompted to describe your agent in natural language. That’s it — just describe what the agent should do, how it should behave, and what tone it should take. For example:

“You are a friendly and professional assistant for my online skincare shop. You help customers with questions about product ingredients, delivery options, and how to track their order status.”

Once you’ve set the description, you can go further by uploading reference materials such as product catalogues, FAQs, or policies. These will give your agent deeper knowledge to draw from. You can also choose to enable additional tools like web browsing or code interpretation, depending on your needs.

Then, test it. Interact with your agent just like a customer would. If it stumbles, refine your instructions. Think of it like coaching — the more clearly you guide it, the better the output becomes.


Step 4: Go Further with Visual Builders

If you’re looking to connect your agent to the outside world — such as pulling data from a spreadsheet, triggering a workflow in your CRM, or sending a Slack message — that’s where tools like Make.com come in.

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These platforms allow you to visually design workflows by dragging and dropping different actions and services into a flowchart-style builder. You can set up scenarios like:

  • A user asks the agent, “Where’s my order?”
  • The agent extracts key info (e.g. email or order number)
  • It looks up the order via an API or database
  • It responds with the latest shipping status, all in real time

The experience feels a bit like setting up rules in Zapier, but with more control over logic and branching paths. These platforms open up serious possibilities without requiring a developer on your team.


Step 5: Train It, Test It, Then Launch

Once your agent is built, don’t stop there. Test it with real people — ideally your target users. Watch how they interact with it. Are there questions it can’t answer? Instructions it misinterprets? Fix those, and iterate as you go.

Training doesn’t mean coding — it just means improving the agent’s understanding and behaviour by updating your descriptions, feeding it more examples, or adjusting its structure in the visual builder.

Over time, your agent will become more capable, confident, and useful. Think of it as a digital intern that never sleeps — but needs a bit of initial training to perform well.


Why Build One?

The most obvious reason is time. An AI agent can handle repetitive questions, assist users around the clock, and reduce the strain on your support or operations team.

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But there’s also the strategic edge. As more companies move towards automation and AI-led support, offering a smart, responsive agent isn’t just a nice-to-have — it’s quickly becoming an expectation.

And here’s the kicker: you don’t need a big team or budget to get started. You just need clarity, curiosity, and a bit of time to explore.


Where to Begin

If you’ve got a ChatGPT Plus account, start by building a Custom GPT. You’ll get an immediate sense of what’s possible. Then, if you need more, look at integrating Make.com or another builder that fits your workflow.

The world of agentic AI is no longer reserved for the technically gifted. It’s now open to creators, business owners, educators, and anyone else with a problem to solve and a bit of imagination.


What kind of AI agent would you build — and what would you have it do for you first? Let us know in the comments below!

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Which ChatGPT Model Should You Choose?

Confused about the ChatGPT model options? This guide clarifies how to choose the right model for your tasks.

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ChatGPT model

TL;DR — What You Need to Know:

  • GPT-4o is ideal for summarising, brainstorming, and real-time data analysis, with multimodal capabilities.
  • GPT-4.5 is the go-to for creativity, emotional intelligence, and communication-based tasks.
  • o4-mini is designed for speed and technical queries, while o4-mini-high excels at detailed tasks like advanced coding and scientific explanations.

Navigating the Maze of ChatGPT Models

OpenAI’s ChatGPT has come a long way, but its multitude of models has left many users scratching their heads. If you’re still confused about which version of ChatGPT to use for what task, you’re not alone! Luckily, OpenAI has stepped in with a handy guide that outlines when to choose one model over another. Whether you’re an enterprise user or just getting started, this breakdown will help you make sense of the options at your fingertips.

So, Which ChatGPT Model Makes Sense For You?

Currently, ChatGPT offers five models, each suited to different tasks. They are:

  1. GPT-4o – the “omni model”
  2. GPT-4.5 – the creative powerhouse
  3. o4-mini – the speedster for technical tasks
  4. o4-mini-high – the heavy lifter for detailed work
  5. o3 – the analytical thinker for complex, multi-step problems

Which model should you use?

Here’s what OpenAI has to say:

  • GPT-4o: If you’re looking for a reliable all-rounder, this is your best bet. It’s perfect for tasks like summarising long texts, brainstorming emails, or generating content on the fly. With its multimodal features, it supports text, images, audio, and even advanced data analysis.
  • GPT-4.5: If creativity is your priority, then GPT-4.5 is your go-to. This version shines with emotional intelligence and excels in communication-based tasks. Whether you’re crafting engaging narratives or brainstorming innovative ideas, GPT-4.5 brings a more human-like touch.
  • o4-mini: For those in need of speed and precision, o4-mini is the way to go. It handles technical queries like STEM problems and programming tasks swiftly, making it a strong contender for quick problem-solving.
  • o4-mini-high: If you’re dealing with intricate, detailed tasks like advanced coding or complex mathematical equations, o4-mini-high delivers the extra horsepower you need. It’s designed for accuracy and higher-level technical work.
  • o3: When the task requires multi-step reasoning or strategic planning, o3 is the model you want. It’s designed for deep analysis, complex coding, and problem-solving across multiple stages.

Which one should you pick?

For $20/month with ChatGPT Plus, you’ll have access to all these models and can easily switch between them depending on your task.

But here’s the big question: Which model are you most likely to use? Could OpenAI’s new model options finally streamline your workflow, or will you still be bouncing between versions? Let me know your thoughts!

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