ML Engineer
AI Chopping Block, Inc.
Check out 1962 new Machine Learning Engineer opportunities posted on AI Chopping Block Design, build, and maintain scalable machine learning systems including data ingestion, preprocessing, training, testing, and deployment. Develop and optimize end-to-end ML pipelines encompassing data collection, labeling, training, validation, and monitoring to ensure reliability and reproducibility. Implement robust MLOps practices such as model versioning, experiment tracking, CI/CD for machine learning, and continuous monitoring in production environments. Collaborate with product and engineering teams to integrate and deploy models into real-time products with a focus on efficiency and scalability. Ensure data quality, observability, and performance across all AI systems. Stay current with the latest AI infrastructure, tooling, and research to support ongoing innovation. Develop, train, and optimize machine learning models for various mobile app features. Research and implement state-of-the-art AI techniques to improve user engagement and app performance. Collaborate with cross-functional teams to integrate AI-driven solutions into applications. Design and maintain scalable ML pipelines, ensuring efficient model deployment and monitoring. Analyze large datasets to derive insights and drive data-driven decision-making. Stay updated with the latest AI trends and best practices and incorporate them into development processes. Optimize AI models for mobile environments to ensure high performance and low latency. Machine Learning Enginer, Core Evaluations The responsibilities include designing model evaluation pipelines for models in both development and production environments, designing user studies for subjective model evaluations, converting requirements into measurable metrics, and designing and developing automated evaluation dashboards to monitor and compare model performance. It also involves training new models to capture various evaluation metrics, communicating with the model team to help design improved models based on evaluation results, coordinating with the data team to determine necessary data for enhancing model performance, collaborating with the product manager to ensure product requirements are accurately measured, helping to grow the evaluation team as the founding member, and leading the evaluation team in the future. Member of Engineering (Reinforcement Learning Infrastructure) Keep up with the latest research, and be familiar with the state of the art in LLMs, RL, and code generation. Develop methods for tuning training and inference end-to-end for high throughput. Design data control systems in an RL pipeline that govern what the model sees and when. Debug cases where infrastructure decisions are silently degrading learning dynamics. Build observability tooling that surfaces when a system-level issue is the root cause of a training regression. Help build robust, flexible and scalable RL pipelines. Optimize performance across the stack — networking, memory, compute scheduling, and I/O. Write high-quality, pragmatic code. Work in the team: plan future steps, discuss, and always stay in touch. Member of Engineering (Reinforcement Learning) Research and experiment on ways to improve reasoning and code generation for LLMs. Own the full experiment life cycle from idea to experimentation and integration. Keep up with the latest research, and be familiar with the state of the art in LLMs, RL, and code generation. Translate research ideas into clean, reusable codebases that other researchers can build on. Design, analyze, and iterate on data generation and training of LLMs. Implement and iterate on RL training pipelines that scale reliably across domains. Diagnose training instabilities and failures, debug RL runs and propose mitigation methods. Write high-quality, reproducible and maintainable code. Research Infrastructure Engineer, Training Systems Build and maintain infrastructure for large-scale model training and experimentation. Design APIs and interfaces to simplify complex training workflows and prevent misuse. Improve reliability, debuggability, and performance of training and data pipelines. Debug issues across technologies including Python, PyTorch, distributed systems, GPUs, networking, and storage. Write tests, benchmarks, and diagnostics to detect significant regressions. The Engineering Manager, AI & Data Infrastructure The Engineering Manager, AI & Data Infrastructure leads the AI & Data Infrastructure team responsible for the data and inference systems that support agent interactions, including streaming and batch pipelines for analytics and customer telemetry, realtime databases for low-latency behavior, and GPU and model-serving platforms for LLM inference. This role involves building, leading, and developing a high-performing team of data and ML infrastructure engineers through hiring, coaching, and performance management. Responsibilities include owning the technical strategy and roadmap for AI & Data Infrastructure, staying hands-on with design and code reviews, leading architecture for high-throughput data systems and low-latency inference, setting reliability, quality, and cost standards, investing in developer and analyst experience, raising standards on AI-assisted engineering practices, and partnering with Research, Product Engineering, Platform, and customer-facing teams to deliver data and inference capabilities, including enterprise deployments. #J-18808-Ljbffr AI Chopping Block, Inc.
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Founding ML Engineer - Anthropic Backed Startup $200,000 - $250,000 + Founding Team Equity Most ML roles ask you to fine-tune someone else's idea. This one asks you to build the thing that changes how professionals work entirely. Backed by Anthropic. The problem is hard...InternshipWork at office- ...went from 0 to $7M ARR in our first 12 months. Now we need someone who can push the boundaries of what our ML systems can do. We're hiring a Founding ML Engineer to own the research and engineering behind our core intelligence layer. Our platform indexes hundreds of millions...
- ...& Responsibilities Design, build, and deploy production‑grade ML systems with end‑to‑end ownership of the model lifecycle from conception... ...a related field. 1-6 years of professional experience in ML engineering. Strong programming skills in Python (TypeScript experience is...Full time
- Ensure that ML models can be effectively developed, deployed, managed, and monitored in Production environments. Productionize ML models - integrate trained ML models with Production systems Build and manage ML pipelines - design, build, and maintain automated pipelines...Permanent employmentContract workLocal area
$220k - $300k
...About the Role A well-funded AI/ML platform company operating at the frontier of model training and evaluation is looking for an ML Engineer – Robotics to join their growing team. You will work at the intersection of machine learning, control systems, and real-world...Full time- ...Report to CEO | OpenAI for Physics | 5 Days Onsite Machine Learning Engineer Location: Onsite in San Francisco Compensation: Competitive... ...to hear from you. About the Role UniversalAGI is hiring an ML Engineer to help ship ML outcomes by owning the execution layer:...Work at officeFlexible hours1 day per week
$198k - $230k
...combines both in‑person and remote work to boost collaboration, enhance innovation, and adapt to individual work styles. Senior MLOps Engineer (Applied AI Focus) As a Senior MLOps Engineer on our Product Innovations team, you will serve as the technical lead for Applied...Work at officeRemote workWork from homeWorldwideHome officeFlexible hours$150k - $300k
...profiles and company records from across the web. You will own the ML systems that turn that raw, multilingual, web-scale data into... ...before significant dilution. Own the full ML research and engineering cycle, from prototype to production. Solve genuinely hard problems...- Role Overview Bucket Robotics is hiring a Machine Learning Engineer to push the frontier of CAD-native computer vision for manufacturing. You’ll work on the core ML systems that turn 3D geometry and synthetic data into reliable, production‑grade vision models deployed on...Shift work
$162.8k - $200.2k
...hardest problems in medicine. Within Life Science AI (LSAI), software engineers build the systems that connect generative models, scientific... ...design and engineering campaigns. We're hiring a Staff ML Engineer, Life Sciences AI to lead software infrastructure development...Full timeWork at officeLocal areaFlexible hours- ...The Role We're looking for an Applied ML Engineer who thrives at the intersection of applied research and building real-world products, and who's equally comfortable sitting across from a customer as they are in the codebase. You'll work directly with strategic customers...Full timeFlexible hours
- ...this role We are looking for an experienced Machine Learning Engineer to join our team and help develop cutting-edge speech recognition... ..., and much more. This is an incredibly exciting time to join an ML team designing a personalized learning experience that will...Full timeLive inWork at officeWorldwide
$130k - $250k
...$130,000 - $250,000 What You'll Own Build custom ML models to classify prompts, predict opportunity, and prioritize... ...and when not to Prior founding experience or was an early engineer at a Seed, Series A, or Series B company Nice-to-Have...Full time$133.1k - $236.4k
...sacrificing craft. We are looking for a Senior Machine Learning Engineer to power the intelligence inside our products. This is a hands-... ...Minimum Requirements: Bachelor's in a quantitative field (CS, ML, Data Science, Engineering, or similar) or equivalent practical...Full timeTemporary workLocal areaWorldwide- ...to date investors like a16z, General Catalyst, GV, and Accel and enjoy multi-year runway. About the Role We’re looking for an ML Engineer to build the production systems that train, deploy, monitor, retrain, and serve our machine-learning models reliably. You sit between...Full timeTemporary workWork at officeMonday to FridayMonday to ThursdayFlexible hours
$190k - $205k
...acoustic, magnetic, vibration, electrical, and visual signals Production Engineering Write clean, scalable, well-tested Python code that integrates into a large shared codebase. Build end-to-end ML pipelines including data processing, feature extraction, training,...Full timeLive in- ...be as short as possible What you'll do: Implement state-of-the-art open-source models to run natively in the ComfyUI core engine Design and build the native nodes that expose new model capabilities cleanly to users Work directly with our core team on architecting...Full time
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