94 épisodes
- Pascal is going on Recharge for August so there will be no regular interview episode. However, we want to hear your questions for our mailbag episode. Send them to us on Instagram (https://www.instagram.com/metatechpod) or Threads (https://www.threads.com/@metatechpod) or via good old email to techpodcast@meta.com.
- What changes for you as a developer when the device moves from your pocket to your face? The battery shrinks by an order of magnitude, the thermal budget is whatever won't make your nose uncomfortable, and your mental model of "one process, one device" goes out the window.
Rey and Dmitrii talk us through their custom power monitors, how they've extended Perfetto to give a coherent trace across a multi-device system, why robotic arms make surprisingly good QA engineers, and what it takes to catch the kind of regression that quietly costs you thirty minutes of call time. All of this and more is discussed in this episode.
Got feedback? Send it to us on Threads (https://threads.net/@metatechpod), Instagram (https://instagram.com/metatechpod) and don't forget to follow our host Pascal (https://mastodon.social/@passy, https://threads.net/@passy_). Fancy working with us? Check out https://www.metacareers.com/.
Links
Migrating Data Ingestion Systems at Meta Scale: https://engineering.fb.com/2026/05/12/data-infrastructure/migrating-data-ingestion-systems-at-meta-scale/
Timestamps
Intro 0:05
Introduction and Setup 1:51
Battery Life Optimization in AI Glasses 1:57
Challenges in Testing and CI Architecture 5:37
Detecting and Managing Power Regression 8:27
Developer Tools and Best Practices 13:04
Advanced Monitoring and Synchronization Techniques 16:53
Advanced Power Monitoring in Wearables 21:26
Real-World Examples of Performance Optimization 23:53
Battery Life Improvements Through Engineering 25:21
Engineering Culture and Performance Mindset 27:49
Continuous Testing and Profiling Strategies 29:36
Balancing Profiling Overhead and Accuracy 32:15
Simulating Real-World Scenarios in Testing 34:27
Best Practices for Efficient Wearable Code 37:21
Outro 40:26 - Your smart glasses run all day on a battery narrower than your pinky finger and building it required reinventing how batteries are made. In this episode, Pascal talks to Karthik and Myuran, the engineers behind Meta's steel can battery technology, to explore why traditional pouch cells couldn't cut it for the ultra-slim temple arms of AI glasses like Meta Ray-Bans and the Oakley Vanguards. Tune in to learn how Meta designed, built, and scaled the batteries powering your glasses, wristbands, and cases from first prototype to mass production.
Got feedback? Send it to us on Threads (https://threads.net/@metatechpod), Instagram (https://instagram.com/metatechpod) and don't forget to follow our host Pascal (https://mastodon.social/@passy, https://threads.net/@passy_). Fancy working with us? Check out https://www.metacareers.com/.
Links
SilverTorch: Index as Model — A New Retrieval Paradigm for Recommendation Systems - https://engineering.fb.com/2026/05/26/ml-applications/silvertorch-index-as-model-new-retrieval-paradigm-recommendation-systems/
Timestamps
Intro and News 0:06
Guest intros 1:49
The problem with existing batteries 4:16
Pouch vs Steel Can Batteries 6:40
What does lower impedence mean? 10:27
Power requirements 12:25
Synchronising two batteries 16:02
Manufacturing never-done-before batteries 23:11
Software vs hardware iteration cycles 28:12
Collaborations across the globe 30:51
Market compliance 37:00
Outro 42:24 - You've probably spotted those little circles of your friends' faces popping up on Facebook Reels. They look simple enough, but building them was a proper engineering challenge. In this episode, Pascal chats to Joseph and Subasree about Friend Bubbles, a feature that surfaces which of your close friends have been watching and reacting to the same Reels as you.
We get into the details of how prefetching keeps things snappy without wrecking scroll performance, why the team's ML model had to move from survey-based friend rankings to real-time interaction signals, and the surprising discovery that showing fewer bubbles actually made the whole feature click. If you've ever underestimated a "simple" feature, this one's for you.
Got feedback? Send it to us on Threads (https://threads.net/@metatechpod), Instagram (https://instagram.com/metatechpod) and don't forget to follow our host Pascal (https://mastodon.social/@passy, https://threads.net/@passy_). Fancy working with us? Check out https://www.metacareers.com/.
Links
https://engineering.fb.com/2026/03/18/ml-applications/friend-bubbles-enhancing-social-discovery-on-facebook-reels/
https://engineering.fb.com/2026/04/21/ml-applications/modernizing-the-facebook-groups-search-to-unlock-the-power-of-community-knowledge/
Timestamps
Intro 0:06
Meet the Engineers: Backgrounds and Roles 1:53
Goals and Aspirations in Video Recommendations 4:20
The Origin of Friend Bubbles 4:41
Defining Success: Metrics and User Experience 5:40
Client-Side Constraints and Challenges 6:57
Feature Description: What Are Friend Bubbles? 8:31
Initial Challenges and Performance Issues 9:29
Architectural Changes for Performance 11:34
Impact of Performance on User Experience 15:14
Addressing Client-Side Challenges 16:58
Model Development: From Surveys to Interactions 20:07
Evolving the Model: Real-Time Data and User Interactions 23:35
Exploring Model Training and Performance 24:58
Feedback Loops and User Engagement 25:56
The Role of AI in Development 29:49
Collaboration Across Teams 32:17
Future Directions for Friend Bubbles 34:02
Safe Rollout Strategies for Features 35:22
Outro 37:31
Bloopers 38:27 - Have you ever wondered how Meta makes config rollouts safe at scale? In this episode, Pascal sits down with Ishwari and Joe to discuss Meta's approach for propagating changes across services in seconds and discuss why speed increases the need for strong safeguards. Catch the episode to discover canarying and progressive rollouts, the health checks and monitoring signals used to catch regressions early, and how incident reviews focus on improving systems rather than blaming people. We also hear how data and early AI/ML are slashing alert noise and speeding up bisecting when something goes wrong.
Got feedback? Send it to us on Threads (https://threads.net/@metatechpod), Instagram (https://instagram.com/metatechpod) and don't forget to follow our host Pascal (https://mastodon.social/@passy, https://threads.net/@passy_). Fancy working with us? Check out https://www.metacareers.com/.
Links
FFmpeg at Meta: Media Processing at Scale - https://engineering.fb.com/2026/03/02/video-engineering/ffmpeg-at-meta-media-processing-at-scale/
Reliably Changing Configuration @ Scale - https://atscaleconference.com/reliably-changing-configuration-scale/
Timestamps
Intro 0:06
Introduction and Overview of Configuration Changes 2:31
Understanding Configurations in Distributed Systems 4:02
Meta's Configuration Management Systems 6:43
Safeguards and Incident Prevention 9:22
Deployment Mechanisms: Canary and Progressive Rollouts 12:06
Challenges in Configuration Consumption 14:39
Health Checks and Incident Response 17:13
Mitigation Strategies for Configuration Issues 19:18
Balancing Developer Velocity and Configuration Safety 21:09
Data-Driven Improvements in Incident Management 22:12
Leveraging AI for Change Detection 26:05
Challenges in Deployment and Testing 28:21
Reinventing Change Safety Strategies 30:24
War Stories: Learning from Past Incidents 32:59
Outro 36:10
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À propos de Meta Tech Podcast
Brought to you by Meta. In addition to remaining active in the open source community and conference circuit, this podcast offers another channel that allows us to highlight the technical work of our engineers who will discuss everything from low-level frameworks to end-user features. Throughout the podcast, Meta engineer Pascal Hartig (@passy) will interview developers in the company.
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