Ricardo Ferreira
Ricardo Ferreira
Helping developers build with distributed systems, AI, and data infrastructure
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To Vector, or not to Vector, that is the Question

All Things Open – Raleigh 🇺🇸

Oct. 2025

Ricardo Ferreira
Ricardo Ferreira

Abstract

A data-driven framework for making smart decisions about vector databases. This session explores when you actually need a vector database and when a simpler solution wins, covering the hidden costs of embeddings, infrastructure, and debugging.

See the companion blog post: To Vector, or not to Vector, that is the Question.

Next page The Right Number of Partitions for a Kafka Topic
Played To Vector or not to Vector 1 times
  • 2025-10-13 – All Things Open en To Vector, or not to Vector, that is the Question
Gave 2 talks at All Things Open
  • 2025-10-13 en To Vector, or not to Vector, that is the Question
  • 2021-10-18 en What is Distributed Tracing, and Why Should you Care About it?

© 2018 - 2026 Ricardo Ferreira

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Open Source

I contribute to LangChain4j, an idiomatic open source Java library for building LLM-powered applications on the JVM. Recent work includes adding native vector search embedding stores so developers can build RAG, recommendation engines, and AI memory systems.

I also ported RedisVL to Go, an open source, AI-native client that brings vector search, semantic caching, LLM memory, semantic routing, rerankers, and an MCP server to the Redis ecosystem for Golang developers.

Speaking

I’ve been speaking at conferences since 2008 and doing it full time as part of my work since 2018. Some of the events I’ve spoken at include AWS re:Invent, Microsoft Ignite, Google Cloud Next, KubeCon, Oracle OpenWorld, QCon, Strange Loop, Kafka Summit, Pulsar Summit, JavaOne, DevNexus, JFokus, JNation, and All Things Open.

Recordings of my talks live on my YouTube channel, and the code I write for talks, demos, and tutorials is on my GitHub.

Who am I?

I work at the intersection of distributed systems, AI, and data infrastructure, turning complex technology into things developers can understand, adopt, and build with.

Lately, that means hands-on AI engineering: building vector search, semantic caching, agent memory, and RAG into the data layer; contributing to LangChain4j and RedisVL for Golang; and figuring out how to make AI agents secure enough to ship.

The AI-native work isn’t a pivot. It draws on the same systems-design foundation I’ve built for 20+ years, moving data fast, at scale, close to compute, watching where systems break; now applied to vectors and agents. I have worked on event streaming with Apache Kafka and Flink at AWS and Confluent; observability at Elastic; as well as RDBMS, NoSQL, and Big Data at Oracle. That foundation is exactly what separates AI demos that work on stage from AI systems that survive production.

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© 2018 - 2026 Ricardo Ferreira

Search is powered by Pagefind. Just hit CTRL+K or CMD+K to start searching.

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