Promptql

Promptql

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Love Harriet Tubman
Love Harriet Tubman

PromptQL is the AI platform that delivers human level reliability for natural language based analysis and automation on your data & systems.

08/12/2026

Tano x PromptQL HQ 👀🥐

07/01/2026

you haven’t seen AI work like this. not yet. 7.8.26

05/18/2026

When .global said “let’s do something in SF” we didn’t expect mangoes 🥭

But honestly? Peak season for Indian mangoes might be better than product launches

Mangomaxxing. Sneaker pop up with mango tasting, chai, samosas, music, and good people. You in?

06/03/2025

👀

10/31/2024

Hot take but AI Assistants aren’t living up to the hype!

Despite the buzz, closed-domain AI assistants are falling short. Without reliable, context-aware responses, they’re not ready for serious business use.

Where AI Assistants Fail
Here’s a scenario from a well known sales assistant that’s out there today:

📊 User Query: “What’s the length of my average sales cycle?”
➡️ Assistant Response: “I calculated the average sales cycle length for your opportunities, but there are no results to show.”
The assistant can’t perform a computation. Why? Let’s break it down.

🛑 The Issue: Closed-domain AI assistants rely heavily on search-first algorithms, making them unsuitable for high-trust applications.

Consider a task like “Find all emails from last week that need follow-ups.” A search-based AI might skip important messages if they lack specific keywords, leaving critical follow-ups unnoticed. When this incomplete data is passed to the language model, the result is unreliable, making these assistants ill-suited for nuanced business queries.

✅ The Solution: Agentic query planning. Instead of rigid keyword search, assistants should gather all relevant emails and then use an LLM to classify follow-ups—just as a person would—ensuring accuracy.

PromptQL is currently available in Alpha ➡️ https://bit.ly/3C5c5Qi

We’re also releasing the Agentic Data Access Benchmark.
We built a dataset across 5️⃣ closed domains and put popular assistants to the test:

💡They could only handle the simplest questions.
⚠️ ~80% of real-world, medium-to-high complexity questions performed poorly.

Here's the full agentic data access benchmark ➡️ https://github.com/hasura/agentic-data-access-benchmark

We’re showcasing PromptQL today at our launch event happening now (31st Oct) !

Lots of demos in store and some comparisons too 🍿

Register here for Hasura Dev Day ➡️https://bit.ly/40lymmZ

09/26/2024

🎉 Last Day at DevOps Days DC! 🎉

It’s been an amazing time connecting with everyone at ! Today is your last chance to stop by our booth and chat with the Hasura team. We’re here to talk about how GraphQL can supercharge your data strategy, simplify APIs, and scale your infrastructure. 🚀

Thank you to everyone who stopped by yesterday – we’ve loved hearing your stories and challenges, and we’re excited to continue the conversations today! 🙌

Let’s make this last day the best one yet! Come visit us, grab some swag, and let’s chat all things GraphQL!

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