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AI-generated abandonware is hollowing out open source
When everyone can build, the scarce resource becomes maintainers.
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Demand for engineering managers is surging in the agentic coding era
Just not necessarily to be managers…
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Think the technical interview is dead? Think again
The technical interview is evolving as AI-assisted coding becomes the norm.
Editor’s picks
What is an engineering manager? Taking the step up
This fulfilling role takes you a step beyond a lead engineer. Find out how to best showcase your skills to land it.

New York • September 8 & 9, 2027
Loved LDX3 New York? Pre-sale tickets for 2027 are now available.
Essential reading
On our Engineering Manager playlist
The Manager’s Path: Camille Fournier in conversation
A guide for tech leaders navigating growth and change.
Things I got wrong when preparing for my first Engineering Manager role
Ferit Topcu shares his own experiences in this transition, the errors I made, and how I overcame them.
What we talk about when we talk about leadership
Exploring key leadership themes from years in tech, this talk offers guidance and practical strategies to help engineers become the leaders they want to be.
On-call revolution: Building a culture of ownership and collaboration
Discover how innovative on-call rotations empower developers, foster team collaboration, and reduce complexity, creating a cohesive, ownership-driven culture that enhances service quality.
Managing authentically across levels
Learn how to manage engineers at all levels with practical tips for adapting your style to support growth and foster a thriving, high-performing engineering team.


The festival for modern engineering leadership
New York • September 15 & 16, 2026
More for Engineering managers
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Bugs, outages, and lessons from LDX3 2025
From outages to rebuilding trust, discover the top insights and real-world lessons from LeadDev’s LDX3 2025.
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Vibe coding, hype cycles, and why AI isn’t the 10x answer
How has AI impacted some of the cultural and technical aspects of software engineering?
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AI productivity gains are being offset by organizational bottlenecks
Borrowing from Peter to pay Paul.
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The rise – and looming fall – of acceptance rate
It has become the de facto metric for measuring the effectiveness of AI coding assistants, but is it fit for purpose?
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How to communicate mandates (even if you disagree with them)
You may not agree with a mandate, but that shouldn’t affect the way you communicate it to your team.
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Speed without quality is tomorrow’s crisis arriving faster
At LeadDev LDX3 2025, Christine Pinto, CTO of Epic Test Quest, shares why chasing speed without quality leads to costly failures.
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Has manual testing become obsolete?
AI can improve a lot of processes – but where does testing and QA fit into the new landscape?
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How to hire force multipliers (not 10x engineers)
Long heralded as the “brilliant jerks” of tech, their damage can run deep when it comes to team culture. Hire a force multiplier instead.
Videos for Engineering managers
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AI-native development: How to actually get the most out of your agents
This talk covers spec-driven development as a way to give agents better constraints, large language model (LLM) gateway and routing strategies for managing which model handles which task, test-driven development adapted for an agent-first workflow, and verification practices built for the volume and pace of AI-generated code.
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The first rung: Where the next generation of engineers will come from
A look at how apprenticeship can help engineering leaders develop the next generation of technical talent for an AI-enabled world.
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Beyond CI/CD: How platform abstractions unlocked developer productivity at scale
In this talk, I will share how our platform engineering team made a deliberate investment to simplify service-to-service connectivity by introducing uniform platform abstractions and out-of-the-box discovery.
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You’re already building a software factory
This session will give you a blueprint for building out your team’s factory, both technically and organizationally.
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Legacy as leverage: How brownfield work builds technical judgment
In this talk, I’ll share how brownfield work builds engineering judgment in ways greenfield environments often do not.
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Building trustworthy agents at scale
This talk explores that journey: how we built testing pipelines for non-deterministic systems, defined “ethical success criteria,” and aligned engineers, product managers, and legal teams around shared principles for responsible AI.
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How to kill the code review
This talk explores why traditional code review is struggling to keep up with AI-driven development. It introduces a five-layer trust model designed to help engineering teams validate AI-generated code, reduce reliance on manual review, and ship faster without sacrificing quality or control.
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Evaluating AI developer tools without the drama
This talk explores how to turn a divided technical evaluation into a decision everyone can trust. Through a real-world AI code review tool rollout, you’ll learn a practical framework for setting shared criteria, rebuilding developer confidence, and making technical decisions with genuine stakeholder buy-in.
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The accountability gap: Engineering governance for autonomous AI
This session walks through an engineering framework for accountable autonomy: a three-tier trust model that categorizes decisions by blast radius (impact and reversibility), an autonomy budget that meters agent trust with SLOs and revokes it automatically when behavior degrades, and circuit breakers that freeze an agent before a bad pattern becomes an incident.
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One shot at scale: Surviving the Super Bowl signup surge
This talk goes behind the scenes of how Fetch prepared for a massive Super Bowl traffic spike, scaling from around 1 signup per second to a target of 150,000. It explores the engineering decisions, architectural trade-offs, stress testing, and launch-day processes that helped the team manage risk when there was only one chance to get it right.
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The real impact of AI on software engineering
This session presents the key findings from LeadDev’s AI Impact Report 2026 – and the numbers tell a more complicated story than the productivity anecdotes suggest.
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The data canary: How Netflix validates catalog metadata
This talk tells the story of how we built the Data Canary: an automated system that validates data transformations using real production traffic, detects regressions in 2.5–4 minutes, and blocks bad data from publishing, all within a 10-minute window.
