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Extreme-Scale, Nano & Fundamental Engineering

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Particle Simulation Engineer

The Monte Carlo pipelines: correctness, variance reduction, and making them run the same way twice.

Mid Full-Time On-site — Kolkata, West Bengal, India Permanent

Compensation

Engagement

Full-Time

Permanent role. Full-time commitment. This is an on-site role at Kolkata. It is not remote and not hybrid.

Scope of role

Drive specific initiatives with minimal supervision. Deepen craft. Begin mentoring others.

Research classification

Simulation Computational research Level 3 · Engineer and Scientist Particle, High-Energy & Nuclear Systems →

Building and running simulations of systems too large or too strongly coupled to solve directly. Verified and, where data exists, validated simulation codes, with documented uncertainty.

Computational research. Computed from established physics. A computed number is a prediction, and it is only as good as its convergence, its error budget, and whatever data it can be checked against.

Scale range 10^-18 m to 10^-12 m

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10-100 m 100 m 10100 m
Experiments reach here 3 bands no experiment reaches This role

This is the smallest scale anything has actually been measured at, and the measurement is statistical. Results here are distributions with uncertainties, not single numbers, and a result quoted without its uncertainty is not a result. We analyse public and collaboration datasets; we do not operate accelerator facilities and do not claim to. Scientific integrity is a condition of every role in this department. Assumptions are stated separately from conclusions. Uncertainty is reported. Negative and inconclusive results are written up, not discarded. Speculative work is labelled speculative, including when that makes it less impressive. Fabrication, falsification, and presenting a simulation as a measurement end an engagement here.

Scale bands are a research classification, not a claim of experimental reach. Most of this span cannot be probed by any apparatus that exists: nothing below about 10^-19 m has been measured directly, and anything at 10^26 m or beyond is inferred from observation rather than engineered. Every opportunity states the kind of work it actually is.

01 — The role

Why this role exists at EduRankAI

Department of Extreme-Scale, Nano & Fundamental Engineering, Division D02: Particle, High-Energy & Nuclear Systems. This division works where theory meets very large datasets. It builds simulation pipelines, analyses public and collaboration datasets, quantifies uncertainty honestly, and supports detector and materials research with computation. It does not operate an accelerator. This position: The Monte Carlo pipelines: correctness, variance reduction, and making them run the same way twice. Scale range for this work: 10^-18 m to 10^-12 m. Research classification: Simulation. Building and running simulations of systems too large or too strongly coupled to solve directly. Evidential standing: Computational research. Computed from established physics. A computed number is a prediction, and it is only as good as its convergence, its error budget, and whatever data it can be checked against. This is the smallest scale anything has actually been measured at, and the measurement is statistical. Results here are distributions with uncertainties, not single numbers, and a result quoted without its uncertainty is not a result. We analyse public and collaboration datasets; we do not operate accelerator facilities and do not claim to. Scale bands are a research classification, not a claim of experimental reach. Most of this span cannot be probed by any apparatus that exists: nothing below about 10^-19 m has been measured directly, and anything at 10^26 m or beyond is inferred from observation rather than engineered. Every opportunity states the kind of work it actually is. Level 3 (Engineer and Scientist). A whole problem end to end: framing it, doing the work, and reporting the result with its limits.

02 — The work

What you will own

  • 01 Model particle and nuclear interactions and compare the models against measured distributions.
  • 02 Analyse public and collaboration datasets, with the selection criteria written down before the result is looked at.
  • 03 Build and maintain simulation pipelines that run reproducibly at scale.
  • 04 Quantify statistical and systematic uncertainty separately, and report both.
  • 05 Validate computational results against known cases before trusting them on unknown ones.
  • 06 Support detector and radiation-damage research with modelling other divisions can use.
  • 07 Own a whole problem end to end: framing it, doing the work, and reporting the result with its limits.
  • 08 Review a colleague's work when asked, and say plainly when a result is not supported by its method.

03 — The expertise

What we look for

Can state what a cross-section is, in what units, and how it relates to an event rate.Has written a Monte Carlo simulation and can explain its variance and how it was reduced.Competent in statistics: likelihood, confidence intervals, and why a p-value is not a probability that a hypothesis is true.Can write analysis code in Python or C++ that another person can run on the same data and reproduce.Reports uncertainty with every number, and separates statistical from systematic.Monte Carlo methodsHPC schedulingPythonC++Scientific computing

04 — The bar

Who thrives here

  • Education: Master's degree or doctorate in a relevant discipline, or equivalent demonstrated research output.
  • Experience: 2 to 5 years of relevant work, or a doctorate in the field.
  • Scope of the role: A whole problem end to end: framing it, doing the work, and reporting the result with its limits.
  • Must have: Can state what a cross-section is, in what units, and how it relates to an event rate. Also: Has written a Monte Carlo simulation and can explain its variance and how it was reduced.
  • Portfolio: at least one piece of work — code, a written result, a thesis chapter, a preprint — that somebody outside your institution can read and assess. It does not need to be published.

Terms of Engagement

How working time works at this level

A scheduled week: five days, eight hours a day, with two full rest days and latitude over when within the day you work.

Type

Mid-level

Working days

5 per week

Rest days

2 per week

Scheduled week

40 hrs

Per day

8h

Measured by

Objectives agreed at the start of each cycle. Hours recorded for compliance are never used as a performance score.

Where this stands legally

Within the 9-hour day and 48-hour week ceiling of the applicable state Shops and Establishments Act, with at least 24 consecutive hours of weekly rest and a break of at least 30 minutes after five hours of continuous work. Hours are recorded for statutory compliance only. Work beyond the scheduled week is agreed in advance and compensated with time off in lieu.

The full per-level model is published at Working Hours by Level.

05 — Hiring process

What to expect after you apply

  1. 01

    Application review

    Every application is read personally within five business days. We respond either way.

  2. 02

    Take-home or live exercise

    Role-specific. Time-boxed. Real problems we are actually working on, not invented puzzles.

  3. 03

    Conversations

    Deep technical and values conversations with the team you would join. No trick questions. No panel ambushes.

  4. 04

    Offer or honest no

    If yes: digital offer letter, signed in-portal, transparent terms. If no: written feedback if you want it.

The standard

What you deliver, and how it is judged

Deliverables

  • Analysis code with a fixed environment, a recorded selection, and a seeded run.
  • Distributions and fits reported with statistical and systematic uncertainties separated.
  • Validation notes showing the pipeline reproducing a known result before it was used on a new one.
  • Simulation configurations another division can run without asking how.

Evaluation criteria

  • Whether the uncertainty budget is complete and defensible.
  • Reproducibility of the analysis from a clean checkout.
  • Validation against a known benchmark before any novel claim.
  • Resistance to the temptation to tune a selection after seeing the result.

Preferred, not required

Nothing in this list is a bar to applying.

A graduate course in quantum field theory or nuclear physics.Experience with a large dataset that did not fit in memory.Familiarity with at least one detector simulation or event-generation toolkit.Version-controlled analysis with a recorded environment.Experience on an experimental collaboration, at any level.HPC or batch-scheduler experience.Machine learning applied to physics data, with an honest classical baseline alongside it.

Tools you would work in

ROOT or an equivalent analysis frameworkGeant4-style detector simulationNumPy and SciPyHPC batch schedulersGitContainerised environments

Reports to: Particle, High-Energy & Nuclear Systems Lead

Works with: D01, D06, D08, D09

Before you start

What we will collect. What it costs. What we will not do with it.

We will collect

  • Name, email, phone — Account + application updates. No marketing.
  • Resume / portfolio link — Human review of your work.
  • Date + place of birth — Identity verification only.
  • Your written responses — Selection rubric. Read by humans.
  • Government ID (later) — Anti-fraud at offer / interview stage. Not at signup.

We will never

  • Sell your data
  • Share with third-party recruiters
  • Use for advertising
  • Train models on it
  • Send marketing email

Our situation

EduRankAI is a small, independent organization building long-term capabilities in educational intelligence, advanced AI systems, and research infrastructure. We take no advertiser money, no donations with strings attached, and no investor pressure on hiring decisions. Applying is free, and every application is read by a human — recruitment, technical, academic and leadership teams. It buys us the right to be honest.

Full transparency policy Questions? Email us

Ready to apply?

We read every application personally. If you are the right person for this role — regardless of pedigree, background, or where you are based — you will hear back from us within five business days.

Apply through this page. You will be asked for your education, your experience, and links to work we can actually read — a repository, a write-up, a thesis chapter, a preprint. Send the piece of work you would defend, not the one with the best title. If a result in it turned out to be wrong, say so; we would rather read that than not know. Every application is read by a person. We assess applications on evidence of the work. We do not filter on institution, on age, on gender, on caste, on religion, on disability, or on where you are from. If any part of this process is inaccessible to you, tell us and we will change it for you.

Mid Full-Time

Particle Simulation Engineer

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