Senior/Staff Backend Engineer

AIDA Recruitment

Canada

On-site

CAD 223,000 - 334,000

Full time

8 days ago

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Benefits offered by this job

Equity

Job summary

A Senior/Staff Software Engineer role is available for a rapidly growing tech company developing AI-powered voice agent infrastructure. The team is building a purpose-built database for conversational AI data and scalable infrastructure to support tens of thousands to hundreds of thousands of concurrent voice calls.

You will own backend services in TypeScript/Node.js and Python, working with LiveKit, Temporal, and STT/TTS systems while shaping data pipelines and observability.

Qualifications

  • 5+ years of software engineering experience.
  • Proven experience building a database, queue, storage engine, streaming system, or distributed data platform.
  • Ideally as a primary author, architect, or technical owner.
  • Strong knowledge of distributed systems.
  • Experience scaling infrastructure under significant real-world production load.
  • Ability to discuss systems quantitatively (throughput, latency, data volumes, cost).
  • Strong backend development experience with TypeScript/Node.js and Python.
  • Strong understanding of production monitoring, observability, and distributed tracing.
  • AI-native mindset and bias to action.

Responsibilities

  • Design and build a purpose-built database for conversational AI data, including storage, indexing, ingestion, query paths, and retrieval.
  • Scale simulation infrastructure toward 200K+ concurrent calls.
  • Architect for high availability and 99.99% uptime.
  • Own backend services built with TypeScript/Node.js and Python.
  • Work with LiveKit, Temporal, STT/TTS, and LLM tooling.
  • Build pipelines for telephony events, recordings, transcripts, evaluations, and call outcomes.
  • Improve observability using OpenTelemetry and SigNoz.
  • Diagnose and eliminate performance bottlenecks in high-throughput systems.
  • Make architectural decisions around scalability, reliability, latency, and costs.
  • Ship rapidly and deploy to production multiple times per day.

Skills

5+ years experience
backend/infrastructure
distributed systems
ownership
AI-native mindset
bias to action

Tools

LiveKit
Temporal
OpenTelemetry
SigNoz
Node.js
Python

Job description

Location: Remote — USA, Canada, or London, UK
Engagement: Full-time / Long-term project
Compensation: $160K–$240K annually+ meaningful equity
Seniority: Senior / Staff

About the Project

We are looking for a Senior/Staff Software Engineer to join a rapidly growing technology company building infrastructure for AI-powered voice agents.

The product helps companies test and improve their AI voice agents at scale. The platform can automatically run thousands of simulated calls using different accents, tones, speaking styles, personalities, and scenarios, then analyze the conversations and identify bugs, failures, and unexpected behavior.

The company is experiencing rapid growth and is now scaling its infrastructure from approximately 30K concurrent voice calls toward 100K–200K+ concurrent calls.

A major upcoming initiative is the development of a purpose-built database for conversational AI, designed to efficiently store, process, query, and retrieve massive volumes of voice-agent interaction data.

We're looking for someone who has genuinely built data infrastructure at scale — ideally as a primary author, architect, or technical owner of a database, queue, storage system, streaming platform, or other large-scale data system.

What You'll Do
  • Design and build a purpose-built database for conversational AI data, including storage architecture, indexing, ingestion, query paths, and retrieval at scale.
  • Scale simulation infrastructure from approximately 30K toward 200K+ concurrent voice calls.
  • Architect systems for high availability, graceful degradation, and 99.99% uptime.
  • Own critical backend services built primarily with TypeScript/Node.js and Python.
  • Work with technologies across real‑time voice and AI infrastructure, including LiveKit, Temporal, STT/TTS systems, and LLM tooling.
  • Build reliable pipelines for telephony events, recordings, transcripts, evaluations, and call outcomes.
  • Improve distributed tracing and production observability using technologies such as OpenTelemetry and SigNoz.
  • Diagnose and eliminate performance bottlenecks across high‑throughput distributed systems.
  • Make architectural decisions around scalability, reliability, latency, storage, and infrastructure costs.
  • Ship quickly, measure production behavior, and continuously iterate. The engineering team currently deploys to production multiple times per day.
What We're Looking For
  • 5+ years of software engineering experience, with strong backend or infrastructure expertise.
  • Proven experience building a database, queue, storage engine, streaming system, distributed data platform, or comparable large-scale infrastructure.
  • Ideally, you were a primary author, architect, or technical owner rather than simply a user or contributor.
  • Strong knowledge of distributed systems, including partitioning, replication, concurrency, consistency, failure recovery, backpressure, and graceful degradation.
  • Experience scaling infrastructure under significant real‑world production load.
  • Ability to discuss previous systems quantitatively — for example, requests/events per second, concurrency, p95/p99 latency, data volumes, availability, cluster size, or cost improvements.
  • Strong backend development experience. TypeScript/Node.js and Python are used on the project, but engineers from other strong infrastructure backgrounds are welcome.
  • Strong understanding of production monitoring, observability, and distributed tracing.
  • High level of ownership and ability to operate effectively in a fast‑moving environment.
  • AI‑native mindset: actively using modern AI tools to accelerate engineering, debugging, research, and development.
  • Strong bias to action — comfortable building the smallest working solution, shipping it, learning from production, and iterating.
Nice to Have
  • Database internals / storage engine development
  • Distributed databases
  • Kafka, Pulsar, Redpanda, or similar messaging infrastructure
  • Streaming or high‑throughput ingestion systems
  • Query engines and indexing
  • Observability infrastructure
  • OpenTelemetry / SigNoz
  • WebRTC / LiveKit
  • Telephony, SIP, or RTP
  • Voice or audio processing
  • STT/TTS infrastructure
  • LLM infrastructure
  • Experience at a database, data infrastructure, observability, or developer infrastructure company
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