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Rezolve Ai

Delivery Manager

CompanyRezolve Ai
LocationMiddle Barton, England, United Kingdom
Posted At2/6/2026

UK Visa Sponsorship Analytics

Analytics are greyed out due to low classification confidence (45.0%).
Occupation Type
Managers in transport and distribution
Occupation Code Skill LevelHigher Skilled
Sponsorship Salary Threshold
£44,900 (£23.03 per hour)
Occupation rate applies

Above analytics are generated algorithmically based on job titles and may not always be the same as the company's job classification. You can also check detailed occupation eligibility, and salary criteria on our UK Visa Eligible Occupations & Salary Thresholds page.

Disclaimer: Hunt UK Visa Sponsors aggregates job listings from publicly available sources, such as search engines, to assist with your job hunting. We do not claim affiliation with Rezolve Ai. For the most up-to-date job details, please visit the official website by clicking "Apply Now."

Description
Enrich AI is Rezolve’s product data enrichment platform. It uses AI/LLM driven orchestration to enrich product catalog data (attributes, classifications, metadata) to improve search quality and product discovery.

Current delivery surface area includes:

Infrastructure stabilization/scaling and environment provisioning (working with SRE + vendor

such as Aiven)

AI output quality improvements (audits, golden dataset testing)

Orchestration optimization (reduce LLM calls / cost-to enrich)

DataHub integration for automated data flows (cross-project dependency on DIM)

Rules system (post-enrichment processing) and related frontend ops workflows.

Distributed team delivery (incl. Rezolve India team onboarding started 2026-01-05)

Current code base surface area (from GitHub READMEs):

Backend/API: enrich-ai is an Nx monorepo POC aiming to replace existing Enrich APIs,

building a federated GraphQL graph (Node.js/NestJS/Prisma; GraphQL federation/Apollo

Router; GraphQL Yoga; Pothos; tRPC) UI integration:

command-center-enrich is a React 18 app/plugin-style repo

(Material UI + styled-components) that integrates an Enrich console package into Command

Center and is enabled via feature flag.

Own predictable, transparent delivery for Enrich AI across infrastructure, AI quality, and

integration initiatives; ensure the team can plan, execute, and ship with clear priorities, minimal

delivery friction, and reliable stakeholder communication.

Key Responsibilities

Delivery planning & execution

Run weekly planning/triage and drive a consistent delivery cadence aligned to the team’s

“Weekly Highlight Reports” structure.

Maintain delivery plans in Jira (including Advanced Roadmaps plan where applicab

le),ensuring scope, sequencing, and dependencies are explicit.

Convert goals/initiatives into executable epics/stories with clear acceptance criteria and

measurable outcomes.

Dependency & blocker management (critical path)

Actively manage cross-team dependencies, notably DataHub

Enrich integration blocked by DIM work.

Set up explicit dependency tracking (Jira links, dependency board, weekly check-

ins) and publish status/ETAs with confidence levels.

Release & operational readiness

Coordinate releases and operational readiness with SRE/Operations; ensure run

books,roll backs, and monitoring/alerting expectations are met.

Drive risk reviews for infra changes, vendor constraints, and environment provisioning.

Quality and AI outcomes management

Ensure AI quality work is planned and communicated with clear, reviewab

le outcomes.

Ensure the team can report AI improvements in a way leadership can understand (quality,

cost, throughput).

Jira/Confluence hygiene + reporting

Ensure Jira reflects reality (status discipline, WIP limits, aging work review, clear definitions

of done).

Produce crisp weekly delivery updates and b

i-weekly CTO-ready highlights (accomplished/ planned / risks / decisions).

Preferred Experience (strong Plus)

AI/ML product delivery experience (MLOps, model/LLM quality evaluation, experiment

cadence).

Data pipeline/integration delivery experience (ETL, data platforms, system-to-system integrations).

Experience with PIMs (Product Information Management) / PIM workflows.

Familiarity with CI/CD and cloud vendor management.

Familiarity delivering GraphQL/Graph federation APIs and modern TypeScript backends (Nx monorepos, NestJS).

Familiarity coordinating frontend delivery in React ecosystems (Material UI / component libraries) and feature

  • flag rollouts


Key relationships

Engineering lead (Enrich)

SRE / platform engineering

DIM / DataHub team (dependency partner)

Product and Operations stakeholders

Professional Services (incl. India team)

We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more
information about how your data is processed, please contact us.