AI Research Internship

Lexsi Labs

Mumbai

On-site

INR 446,400 - 669,600

Full time

14 days+

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Benefits offered by this job

Real-world impact
Compute resources
Competitive stipend
Authorship opportunities

Job summary

Lexsi Labs is seeking an AI Research Intern to join our frontier lab focused on aligned, interpretable, and safe AI. You will work on large-scale industry problems, collaborating with research and engineering teams in a startup-like environment that values speed and reliability.

You will contribute to library development, explainability, mechanistic interpretability, and uncertainty estimation while authoring experiments and possibly papers.

Qualifications

  • Strong Python expertise: writing clean, modular, and testable code.
  • Theoretical foundations of ML with hands‑on PyTorch experience.
  • Transformer architectures & fundamentals: attention mechanisms and training objectives.
  • Version control & CI/CD: Git workflows, packaging, documentation.
  • Collaborative mindset: excellent communication and agile teamwork.

Responsibilities

  • Develop and extend open‑source tools for alignment, explainability, and model robustness.
  • Explore SOTA XAI techniques across text, image, and tabular data.
  • Probe internal model representations to diagnose failure modes.
  • Benchmark uncertainty estimation methods and robustness metrics for foundation models.
  • Contribute experiment code and co‑author whitepapers or conference submissions.

Skills

Strong Python expertise
Theoretical foundations
Transformer architectures
Version control
Collaborative mindset

Tools

PyTorch
Git

Job description

Commitment: Full-time internship (6 months; potential extension or full-time offer)

Start Date: Rolling

AI Research Intern – Lexsi Labs

About Lexsi Labs Lexsi Labs is one of the leading frontier labs focusing on building aligned, interpretable and safe Superintelligence. Most of the work involves creating new methodologies for efficient alignment, interpretability lead‐strategies and tabular foundational model research. Our mission is to create AI tools that empower researchers, engineers, and organizations to unlock AI's full potential while maintaining transparency and safety.

Our team thrives on a shared passion for cutting‑edge innovation, collaboration, and a relentless drive for excellence. At Lexsi.ai, everyone contributes hands‑on to our mission in a flat organizational structure that values curiosity, initiative, and exceptional performance.

As a research intern at Lexsi.ai, you will be uniquely positioned in our team to work on very large‑scale industry problems and push forward the frontiers of AI technologies. You will become a part of the unique atmosphere where startup culture meets research innovation, with key outcomes of speed and reliability.

What You’ll Do

We work on multiple frontier research ideas and challenges. If you are selected, you will be working on one of these following areas, collaborating closely with our research and engineering teams:

  • Library Development: Architect and enhance open‑source Python tooling for alignment, explainability, model alignment, uncertainty quantification, robustness, and machine unlearning
  • Explainability & Trust: Improve and find new observations using our and other SOTA XAI techniques (DLB, LRP, SHAP, Grad‑CAM, Backtrace) across text, image, and tabular modalities to understand and present new model interpretability
  • Mechanistic Interpretability: Probe internal model representations and circuits—using activation patching, feature visualization, and related methods—to diagnose failure modes and emergent behaviors
  • Uncertainty & Risk: Develop, implement, and benchmark uncertainty estimation methods (Bayesian approaches, ensembles, test‑time augmentation) alongside robustness metrics for foundation models
  • Tabular Foundational Models (Orion): Work with our leading Tabular Foundational Model team to improve and launch new tabular foundational model architectures and work on our leading open‑source library TabTune
  • Reinforcement Learning : Explore new ideas and algorithms around RL and our new RL fine‑tuning library
  • Research Contributions: Author and maintain experiment code, run systematic studies, and co‑author whitepapers or conference submissions
General Required Qualifications
  • Strong Python expertise: writing clean, modular, and testable code
  • Theoretical foundations: deep understanding of machine learning and deep learning principles with hands‑on experience with PyTorch
  • Transformer architectures & fundamentals: comprehensive knowledge of attention mechanisms, positional encodings, tokenization and training objectives in BERT, GPT, LLaMA, T5, MOE, Mamba, etc.
  • Version control & CI/CD: Git workflows, packaging, documentation, and collaborative development practices
  • Collaborative mindset: excellent communication, peer code reviews, and agile teamwork
Preferred Domain Expertise (Any one of these is good)
  • Explainability: applied experience with XAI methods such as DLB, SHAP, LIME, IG, LRP, DL‑Backtrace or Grad‑CAM
  • Mechanistic interpretability: familiarity with circuit analysis, activation patching, and feature visualization for neural network introspection
  • Uncertainty estimation: hands‑on with Bayesian techniques, ensembles, or test‑time augmentation
  • Quantization & pruning: applying model compression to optimize size, latency, and memory footprint
  • LLM Alignment techniques: crafting and evaluating few‑shot, zero‑shot, and chain‑of‑thought prompts; experience with RLHF workflows, reward modeling, and human‑in‑the‑loop fine‑tuning
  • Tabular Foundational Models: Should have used or improved TFMs like Orion, TabPFN, TabICL, etc.
  • Post‑training adaptation & fine‑tuning: practical work with full‑model fine‑tuning and parameter‑efficient methods (LoRA, adapters), instruction tuning, knowledge distillation, and domain‑specialization
Additional Experience (Nice‑to‑Have)
  • Publications: contributions to CVPR, ICLR, ICML, KDD, WWW, WACV, NeurIPS, ACL, NAACL, EMNLP, IJCAI or equivalent research experience
  • Open‑source contributions: prior work on AI/ML libraries or tooling
  • Domain exposure: risk‑sensitive applications in finance, healthcare, or similar fields
  • Performance optimization: familiarity with large‑scale training infrastructures
What We Offer
  • Real‑world impact: address high‑stakes AI challenges in regulated industries
  • Compute resources: access to GPUs, cloud credits, and proprietary models
  • Competitive stipend: with potential for full‑time conversion
  • Authorship opportunities: co‑authorship on papers, technical reports, and conference submissions
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