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Open nowPosted 21 days ago

Machine Learning Storage Infrastructure Engineer

MyCareersFuture94,028 open roles

Pay
SGD 11,250 – SGD 22,500 a Monthly
Where
Central, Singapore
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Your applicationOpen nowMachine Learning Storage Infrastructure EngineerMyCareersFuture · Central, Singapore
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This job: posted 21 days ago

The posting

About Us

Founded in 2012, ByteDance's mission is to inspire creativity and enrich life. With a suite of more than a dozen products, including TikTok, Lemon8, CapCut and Pico as well as platforms specific to the China market, including Toutiao, Douyin, and Xigua, ByteDance has made it easier and more fun for people to connect with, consume, and create content.​

Why Join ByteDance

Inspiring creativity is at the core of ByteDance's mission. Our innovative products are built to help people authentically express themselves, discover and connect – and our global, diverse teams make that possible. Together, we create value for our communities, inspire creativity and enrich life - a mission we work towards every day.​

As ByteDancers, we strive to do great things with great people. We lead with curiosity, humility, and a desire to make impact in a rapidly growing tech company. By constantly iterating and fostering an "Always Day 1" mindset, we achieve meaningful breakthroughs for ourselves, our Company, and our users. When we create and grow together, the possibilities are limitless. Join us.​

Diversity & Inclusion​

ByteDance is committed to creating an inclusive space where employees are valued for their skills, experiences, and unique perspectives. Our platform connects people from across the globe and so does our workplace. At ByteDance, our mission is to inspire creativity and enrich life. To achieve that goal, we are committed to celebrating our diverse voices and to creating an environment that reflects the many communities we reach. We are passionate about this and hope you are too.​

Job highlights

Career growth opportunity, Paid leave, Flat organization, Meals provided, Competitive compensation

Responsibilities

About The Team

The mission of our AML team is to push the next-generation AI infrastructure and recommendation platform for the ads ranking, search ranking, live & e-commerce ranking in our company. We also drive substantial impact on core businesses of the company.

Responsibilities

-Design and build a unified platform/middleware system that can support diverse business requirements across different scenarios, including low cost, high availability, high throughput, high performance, and large-scale storage capacity.

-Design and optimize complex multi-tier storage architectures beyond GPU memory, CPU memory, and external storage, with a focus on efficient data placement and resource utilization.

-Keep up with the latest advances in software and hardware architectures, and proactively evaluate and experiment with emerging technologies.

-As an internal platform serving multiple teams, plan and optimize the utilization of large volumes of heterogeneous resources across multiple hardware generations, data centers, service tiers, and resource pools. Develop automated and dynamic optimization strategies based on changes in model size, service traffic, and workload characteristics.

Qualifications

Minimum Qualifications

-Bachelor's degree or above in Computer Science, Software Engineering, or a related field

Proficient in C++ and Python programming in Linux environments.

-Strong understanding of distributed systems principles, with hands-on experience in the design, development, maintenance, and continuous optimization of large-scale distributed systems. Able to identify potential issues and bottlenecks in complex distributed systems.

-Experience working on distributed systems in areas such as recommendation, search, or machine learning, with exposure to resource scheduling, task orchestration, model training, model inference, feature extraction, ML Systems (MLSys), or AIOps.

-Strong logical and analytical thinking skills, with the ability to abstract and decompose complex business and technical requirements effectively. Strong teamwork and collaboration skills.

Preferred Qualifications:

-Experience optimizing systems similar to Parameter Server, or optimizing indexing structures in large-scale search systems.

-Experience with KV Cache systems, such as Mooncake, including system optimization and performance tuning and with mainstream machine learning frameworks such as TensorFlow, PyTorch, or MXNet..

-Familiarity with open-source storage systems such as Redis, LevelDB/RocksDB, and MongoDB, or hands-on experience using or optimizing large-scale distributed storage systems such as HDFS or Ceph.

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