Principal AI Engineering Lead

Reposted 16 Hours Ago
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Petah Tikva, ISR
Hybrid
Senior level
Information Technology • Software
The Role
Lead the AI engineering maturity program for a 100-person R&D/QA/DevOps org: drive hands-on agentic tooling adoption, build safe autonomous agent infrastructure, create spec-driven workflows and self-verifying test loops, own roadmap and observability, and enable engineers across Java/Python/C#/.NET/C++/Oracle stacks to use AI-assisted development at scale.
Summary Generated by Built In

Principal AI Engineering Lead

 Israel

 

Company Overview

300+ media companies as clients, $40+ billion in revenue processed, 25,000+ worldwide users.

Operative is a revenue accelerant for media companies around the world. No other software company in AdTech space, brings a comparable depth of experience to create truly innovative software that performs across all platforms, revenue models and business units. We are a SAAS (Software as a Service) platform which helps clients manage advertisements both in the linear (TV) and digital space. We have been in the market for over two decades and have 1100+ employees with 12 offices spread across the globe. Operative is proud to play a pivotal role in the way advertising is bought, sold and managed across media industry.

 

About the Role

We are looking for a Principal AI Engineering Lead to own and drive our AI engineering maturity journey across a 100-person R&D, QA, and DevOps organization.

This is a hands-on individual contributor role with outsized influence — you will be the internal expert, practitioner, and change agent who takes us from inconsistent AI tool adoption to a fully agentic, multi-phase autonomous engineering capability.

You will not be managing people. You will be changing how 100 engineers work.

This role is equal parts engineering, enablement, and architecture. You will write real code, build real agent workflows, and make the abstract concrete — turning a defined AI maturity framework into daily practice across Java/JVM, Python, C#/.NET, Oracle PL/SQL, and C++ codebases.

 

Scope of your position

  1. AI Adoption & Enablement
  • Audit current AI tool usage across R&D, QA, and DevOps — identify where adoption is genuine vs. nominal
  • Establish and maintain CLAUDE.md-equivalent constitution files: encoding team conventions, architectural standards, testing patterns, and security policies so AI tools produce consistent, codebase-aware output from day one
  • Drive daily active usage above 70% across the engineering org, measured by tool telemetry - not seat count
  • Design and deliver hands-on enablement: prompt engineering, output validation, effective task decomposition, and AI-assisted debugging across our primary stacks (Java/Spring, Python, C#/.NET, C++, Oracle PL/SQL)
  • Run monthly retrospectives to surface what context AI is still missing and close those gaps systematically
  1. Agentic Infrastructure & Workflow Engineering
  • Architect and implement the infrastructure that makes autonomous agent execution safe: sandboxed execution environments, audit logging for all agent actions, and state checkpointing for mid-task recovery
  • Build and enforce the specification discipline: structured spec templates with machine-verifiable acceptance criteria, spec completeness gates before agent assignment, and a lightweight spec-driven development workflow appropriate for our codebases
  • Stand up self-verifying test loops - agents that write tests, implement, run CI, and iterate to green without human intervention - with coverage gates enforced in CI (80%+ on AI-generated code paths)
  • Shift CI/CD pipelines to increase build throughput: automated rollback, feature flags for deploy/release decoupling, and tiered review workflows (auto-merge → single reviewer → full review)
  • Deploy and tune Claude Code as the primary agentic coding platform, alongside evaluation and integration of other tools (GitHub Copilot, Cursor, or equivalent) where they complement the workflow
  1. Technical Roadmap Ownership
  • Define and maintain the AI engineering maturity roadmap with quarterly milestones, gate criteria, and investment priorities
  • Identify the binding constraint at each phase - test coverage, spec formalization, deploy automation, observability - and sequence investments to unblock the next transition
  • Establish observability and feedback loops: OpenTelemetry-instrumented pipelines, production signals routed back to agent context, and SLOs per component as the foundation for eventual multi-agent orchestration
  • Design the agent topology and inter-agent interface contracts that will enable specialized agents (build, test, infra) to coordinate on complete features
  • Advise engineering leadership on where the organization is vs. where it needs to be, using quantitative markers (PR throughput, cycle time, rework rate, intervention rate) and qualitative signals (mental model shift, cultural adoption)

 

Required experience

  • 7+ years of software engineering experience, with at least 2 years of hands-on work with AI-assisted or agentic coding workflows in production environments
  • Deep, practical experience with Claude Code (constitution files, skills, subagents, hooks, headless/agentic mode) and familiarity with the broader AI coding tool landscape
  • Fluency in two or more of our primary stacks: Java/Spring, Python, C#/.NET, C++, or Oracle PL/SQL - enough to earn the trust of engineers working in those languages and to diagnose where AI tooling struggles
  • Strong understanding of test infrastructure and CI/CD: coverage gates, automated rollback, pipeline design for high throughput, and what it takes to make a self-verifying agent loop reliable
  • Demonstrated ability to write and enforce machine-parseable specifications: structured acceptance criteria, EARS notation or equivalent, scope-bounded task definitions that agents can work from without re-prompting
  • Proven track record of cross-functional influence without authority - changing how a team works through demonstration, enablement, and trust, not mandate
  • Comfort operating in a large, heterogeneous codebase with varying levels of test coverage, documentation, and technical debt

Strong Advantage

  • Experience with multi-agent orchestration patterns: agent topology design, inter-agent interface contracts, fan-out/fan-in workflows, and circuit breakers between agents
  • Experience implementing MCP (Model Context Protocol) server integrations for internal tools, databases, or CI/CD systems
  • Understanding of AI cost management: model routing (Opus/Sonnet/Haiku), per-workflow spend tracking, and cost optimization after capability is established

You Are Probably Not the Right Fit If

  • You think AI adoption means buying licenses and watching the numbers
  • You are more comfortable advising than doing - this role requires you to build the thing, not describe it
  • You have only worked in greenfield, well-tested codebases - our environment is real, with legacy code, variable coverage, and multiple languages
  • You expect quick wins - cultural and workflow change at this scale takes a deliberate, sustained effort

 

Why join us ?

  • Operative is a technology-oriented product organization that believes in empowering its people.
  • We use the latest tech stack and empower our engineers to learn, work and ideate on new technologies available in the market.
  • We provide flexi work schedules and remote working to encourage work life balance.
  • We are an equal opportunities employer and recruit based on the experience and skill set.
  • We offer a competitive salary and benefits package.

 

Operative is a merit-first, equal opportunity employer. 

Operative cares about your privacy and protecting your data.
By submitting an application for a position with Operative, you acknowledge that you have read Operatives Candidate Privacy Policy available here, and consent to how Operative treats your data.
 

 

 

 

 

Skills Required

  • 7+ years of software engineering experience with at least 2 years using AI-assisted or agentic coding workflows in production
  • Deep, practical experience with Claude Code (constitution files, skills, subagents, hooks, headless/agentic mode)
  • Fluency in two or more of: Java/Spring, Python, C#/.NET, C++, Oracle PL/SQL
  • Strong understanding of test infrastructure and CI/CD: coverage gates, automated rollback, pipeline design for high throughput
  • Ability to write and enforce machine-parseable specifications (structured acceptance criteria, EARS notation or equivalent)
  • Proven cross-functional influence without authority; experience driving workflow and cultural change through enablement
  • Comfort working in large, heterogeneous codebases with varying test coverage and technical debt
  • Experience with multi-agent orchestration patterns (agent topology, inter-agent contracts, fan-out/fan-in, circuit breakers)
  • Experience implementing MCP (Model Context Protocol) server integrations
  • Understanding of AI cost management and model routing (Opus/Sonnet/Haiku)

Operative Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Operative and has not been reviewed or approved by Operative.

  • Leave & Time Off Breadth Time off and PTO, including paid holidays and occasional global days off, are described as a strength that often grows with tenure. Flexibility to step away supports a generally positive work–life balance.
  • Wellbeing & Lifestyle Benefits A hybrid home/office model and strong work-from-home flexibility are emphasized alongside a wellness program. Feedback suggests these lifestyle supports land well in practice.
  • Healthcare Strength Medical, dental, and vision coverage with options like FSA are presented as standard and serviceable. Multiple plan options contribute to a sense of adequate healthcare coverage.

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The Company
HQ: New York, NY
887 Employees
Year Founded: 2000

What We Do

With $8.5B in digital ad revenue and $40B in global TV ad revenue flowing through the systems, Operative plays a crucial role in helping the world’s top media companies and publishers manage and advance their advertising businesses and increase revenue by helping them transition from ratings-based to outcome-based selling with modern order management system. The platforms are built on modern cloud native SaaS based technologies for Convergence. The multiple channel advertisement requirements are managed from a single place. Our 300+ clients span 25+ countries and include FOX, NBCU, Sinclair, Discovery, Disney, TVNZ, HBO, BellMedia and SKY.

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