General Information
Description & Requirements
External Job Description - English
Your Job
As an SI Interconnect Engineer, you will work at the intersection of
mechanical design and electrical performance. You will support the
development of next-generation interconnect solutions (such as USB-C, HFM,
and HS-Max) by using advanced 3D electromagnetic (EM) simulation tools and
high-frequency lab equipment. Your goal is to ensure that Molex products
maintain signal integrity across demanding automotive and data center
environments.
Our Team
Molex CMS Networking team is a leader in Interconnect in providing
connectivity solutions in Automotive industry in the area of high speed. In
this role, you aren't just placing components; you are designing the
components that make modern technology possible. You will gain exposure to:
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Automotive high-speed links (Self-driving car data backbones).
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Automotive Ethernet, Ser, Deser and other systems
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Complex Material Science (How different plastics and plating affect
signals).
What You Will Do
3D EM Simulation & Modeling
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Full-Wave Modeling:
Assist in creating high-fidelity 3D models of connectors and cable
terminations using Ansys HFSS or CST Studio Suite.
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Virtual Prototyping:
Run simulations to extract S-parameters and identify impedance
discontinuities within the connector pin-field and mating interface.
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Optimization:
Perform "what-if" analyses on mechanical variables (e.g., pin geometry,
plastic dielectric constants, shield spacing) to optimize return loss and
crosstalk.
Lab Validation & Characterization
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High-Frequency Measurement:
Use Vector Network Analyzers (VNA) and Time Domain Reflectometers (TDR) to
characterize physical prototypes up to 20 GHz or higher.
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Fixture De-embedding:
Learn and apply de-embedding techniques (like AFR or TRL) to remove the
effects of test boards, isolating the performance of the connector itself.
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Correlation:
Compare lab measurement data against simulation models to validate
accuracy and refine simulation methodologies.
Crosstalk Simulation & Discovery (Pre-Silicon/Pre-Layout)
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Aggressor-Victim Analysis:
Use Ansys HFSS to perform "discovery" simulations identifying the most
significant crosstalk contributors within a high-density pin array.
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NEXT/FEXT Modeling:
Extract Near-End Crosstalk (NEXT) and Far-End Crosstalk (FEXT)
S-parameters to determine the isolation levels between differential pairs.
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ICN Calculation:
Calculate Integrated Crosstalk Noise (ICN) and Power Sum Crosstalk to
evaluate total noise interference against IEEE 802.3 or OIF-CEI limit
lines.
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Pin-Map Optimization:
Based on crosstalk discovery, provide recommendations for optimized
signal-to-ground ratios and pin-mapping (e.g., G-S-S-G patterns) to shield
sensitive high-speed lines.
Crosstalk Validation (Lab/Post-Layout)
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Multi-Port Measurements:
Utilize 4-port or 8-port Vector Network Analyzers (VNAs) to measure
real-world crosstalk in physical prototypes and connector mating
interfaces.
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Time Domain Analysis:
Use TDR/TDT to locate the exact physical location of a crosstalk "hotspot"
within a connector body or cable transition.
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Correlation:
Document discrepancies between simulated crosstalk and measured crosstalk,
investigating factors such as manufacturing tolerances in pin-to-pin
spacing or plating consistency.
Data Analysis & Automation
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Scripting:
Utilize Python or MATLAB to automate the processing of large Touchstone
sNp file datasets.
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Compliance Testing:
Analyze simulation and test results against industry standards such as
IEEE 802.3 (Ethernet), USB4, or USCAR-2 specifications.
Documentation & Collaboration
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Technical Reports:
Prepare professional SI reports summarizing performance vs. specifications
for internal design reviews.
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Cross-Functional Support:
Interface with Mechanical Engineers to explain how physical design changes
impact electrical performance.
Who You Are (Basic Qualifications)
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B.E/B.Tech in Electronics/Electrical Engineering, or pursuing a M.S., or
Ph.D. in Electrical Engineering or Physics with coursework focused in
Electromagnetics, Microwave Engineering, or Circuit Theory.
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2-5 Years experience in Signal Integrity using Ansys HFSS or CST.
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Strong desire to understand the "why" behind signal degradation.
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Ability to translate complex EM concepts into actionable design advice for
mechanical teams.
What Will Put You Ahead
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Understanding of transmission line theory, characteristic impedance and
S-parameters.
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Exposure to Ansys HFSS, ADS, or Cadence Sigrity.
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Basic proficiency in programming such as Python (NumPy, Pandas,
Matplotlib) or MATLAB.
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Basic experience with oscilloscopes or VNAs is a significant plus.
At Koch companies, we are entrepreneurs. This means we openly challenge the
status quo, find new ways to create value and get rewarded for our
individual contributions. Any compensation range provided for a role is an
estimate determined by available market data. The actual amount may be
higher or lower than the range provided considering each candidate's
knowledge, skills, abilities, and geographic location. If you have
questions, please speak to your recruiter about the flexibility and detail
of our compensation philosophy.
Who We Are
At Koch, employees are empowered to do what they do best to make life
better. Learn how our business philosophy helps employees unleash their
potential while creating value for themselves and the company.
Additionally, everyone has individual work and personal needs. We seek to
enable the best work environment that helps you and the business work
together to produce superior results.