12 Sep
|
FRND
|
Karnataka
Job DescriptionWe're looking for a Machine Learning Intern who's excited about building models that solve real Trust & Safety problems at scale.
NAs part of the FRND ML team, you'll train and ship models that help identify fake profiles, unsafe interactions, abusive speech, harassment, spam, and scams on the platform. You'll work with production data alongside experienced engineers, and the models you build will run on live traffic, not just in a notebook.
NIf you enjoy working withdata, training models, and seeing your work make real decisions for millions of users, this is a great chance to kick-start your ML journey
NWhat You'll Do
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- Work on image & video ML - fake-profile detection, and spoofed-camera detection on 1:1 video calls. N
- Work on audio ML - abuse and unsafe-speech classification, multilingual and code-mixed ASR for audio rooms. N
- Work on text ML - harassment, spam, and scam detection across chat in Hindi, English, and regional languages. N
- Build and clean datasets from production signals and moderation reports,
and help define labelling guidelines. N
- Train and fine-tune models in Python with PyTorch - including vision backbones, audio encoders, and transformer-based text models. N
- Evaluate models with a production mindset - precision at fixed recall, per-language performance, and the real cost of false positives. N
- Collaborate with backend engineers to turn models into inference services and monitor latency and throughput in production. N
- Monitor model drift, review misclassifications with the moderation team, and improve models through better data and retraining. N
- Explore LLMs for labelling, policy classifiers, and model evaluation. N
- Write clean, reproducible code and maintain well-documented experiments. N
nWhat We're LookingFor
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- Available for a 6-month, in-office internship. N
- Strong academic background from a Tier 1 institution, preferably IITs, BITS, NITs, or equivalent institutions.
📌 Hiring: Machine Learning Intern (Karnataka)
🏢 FRND
📍 Karnataka