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Engineering Leader

Job in Greater London, London, Greater London, W1B, England, UK
Listing for: Ema
Full Time position
Listed on 2026-08-31
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Software Architect
Salary/Wage Range or Industry Benchmark: 140000 - 190000 GBP Yearly GBP 140000.00 190000.00 YEAR
Job Description & How to Apply Below
Location: Greater London

About Ema

Ema is building the world’s leading Agentic AI platform to transform enterprise productivity. We enable organizations to delegate repetitive tasks to Ema, the Universal AI Employee, delivering 10x gains in workforce efficiency, across functions. Founded by former executives from Google, Coinbase, Flipkart, and Okta, our team includes engineers from premier tech companies and graduates of Stanford, MIT, UC Berkeley, CMU, and IITs.

We are backed by industry leading investors including Accel, Naspers/Prosus, Section
32, and angels like Sheryl Sandberg and Dustin Moskovitz. Headquartered in Silicon Valley and with offices in London, Bangalore and Vancouver, Ema is at the frontier of what Agentic AI can do in production — we ship real systems that run real business processes at scale.

The Role

We are looking for an Engineering Leader to manage and scale multiple product lines in the Voice, BPO, and Workforce Management space. This is a high-impact leadership role that sits at the intersection of real-time voice systems, operations research, and data-intensive platform engineering.

You will report directly to the Head of Engineering and own the engineering organization that builds the infrastructure powering Ema’s Voice AI Employees, Agent QA, auto-learning pipelines, rich analytics, and workforce optimization capabilities — all operating as scalable, multi‑tenant systems deployed across global geographies.

You will collaborate with Product, ML/AI, and Go-to-Market teams to translate customer needs into production systems that handle high volumes of voice data, deliver real-time insights, and continuously improve through automated learning loops. As the owner of multiple product lines, you will balance roadmap priorities across Voice, BPO operations, and WFM (work force management) — ensuring each product evolves cohesively while meeting distinct customer needs.

What You Will Do
Scalable Multi-Tenant Systems
  • Architect and build multi‑tenant systems that serve enterprise customers across geographies with strict data residency, isolation, and compliance requirements.

  • Design high-throughput ingestion systems capable of processing large volumes of voice data, call metadata, and operational telemetry in near real-time.

  • Make foundational architectural decisions on data stores, stream processing, and storage tiers — balancing query performance, cost, and operational simplicity.

  • Champion SOLID principles, clean architecture, and engineering rigor across all codebases — ensuring systems are testable, extensible, and maintainable at scale.

Team Building & Engineering Culture
  • Recruit, hire, and develop senior engineers across a multi-disciplinary function spanning voice engineering, backend systems, data engineering, and applied operations research.

  • Establish engineering standards, code review culture, and a strong bias toward shipping — with equal commitment to system reliability and customer experience.

  • Coach and grow senior/staff engineers into technical leaders; manage engineering managers as the organization scales.

  • Drive cross‑functional alignment with Product, ML/AI, and Go-to-Market teams to ensure the platform evolves in lockstep with customer needs and market feedback.

Voice Platform & Agent QA
  • Own the end‑to‑end engineering for Ema’s AgentQA capabilities — real‑time voice pipelines, telephony integrations, and voice‑to‑action workflows.

  • Build and scale the Agent QA platform: automated call scoring, compliance monitoring, sentiment analysis, and coaching feedback loops.

  • Design auto‑learning systems that continuously improve voice agents from production interactions — closed‑loop feedback, model retraining triggers, and quality regression detection.

  • Deliver rich voice analytics: call volume trends, handle time distributions, first‑call resolution metrics, agent performance dashboards, and anomaly detection.

  • Build scalable voice pipeline across geographies – keeping in mind PII, security and compliance requirements.

Workforce Management & Operations Research
  • Build WFM capabilities including demand forecasting, shift scheduling, real‑time adherence monitoring, and capacity planning — applying operations research…

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